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Archive for the ‘International Global Work in Pharmaceutical’ Category

The Affordable Care Act: A Considered Evaluation.

Part I.  The legislative act (ACA) and the model for implementation (Insurance Gateways).

Writer and Curator: Larry H. Bernstein, MD, FCAP
and
Curator and Editor: Aviva Lev-Ari, PhD, RN 
This discussion is composed as two distinct chapters.  The first is a clarification of what is contained in the Affordable Care Act (ACA), the model of care it is crafted from, the insurance mandate, the inclusion of groups considered high risk and uninsured, the inclusion of groups low risk and uninsured, and the economics involved in going from a fractured for profit health care industry to a more stable coverage for patients.  The second is taken from selected articles on the care process and the cost and consequences for improving quality at lower cost.   There are inherent problems at looking at this from a systems point of view, mainly impacted by the relationship of providers to hospitals and clinics, and by the relationships of insurers to the patients and providers in an Accountable Care Organization (ACO) model.
This article has the following two parts:

Part I. The legislative act (ACA) and the model for implementation (Insurance Gateways).

Part II.  The Implementation of the ACA, Impact on Physicians and Patients, and the Dis-Ease of the Accountable Care Organizations.

Part I

The legislative act (ACA) and the model for implementation (Insurance Gateways)

A. Access and Coverage of Healthcare Reform Mandate

About 2.5 million young adults from age 19 to 25 attained health coverage as a result of the Affordable Care Act, which took effect in September 2010, according to the U.S. Department of Health and Human Services. Prior to the law’s approval, some 13.7 million young adults were uninsured, nearly one-third of the nation’s total uninsured population, according to the nonprofit Kaiser Family Foundation.
Employer-sponsored health insurance forms the backbone of our health insurance system. This leaves small businesses difficult to provide their workers with comprehensive coverage. In 2007, only 25 percent of employees in small businesses had coverage through their own employers, compared with 74 percent of workers in large firms. Moreover, there are few sources of affordable coverage outside the employer-based system, leaving millions of employees in small businesses uninsured or with inadequate health insurance. In 2007, half as many workers in small businesses were uninsured or underinsured compared to employees in large businesses. Congressional health reform bills to reform the health system include provisions specifically aimed at helping small businesses and their employees gain access to affordable, comprehensive coverage.  Then there is another issue since the “Great Recession” of 2008, that there is no stable coverage for an unemployed workforce and indigent families with competing needs for food and health.  (Kaiser Health News, 2009; 67).
The law created insurance exchanges to close the gap.  Employer interest in insurance exchanges is growing. The Kaiser Family Foundation found that 29% of employers with 5,000 or more employees are considering private exchanges as an option for buying healthcare coverage for their employees. A day later, consulting firm Towers Watson released its Health Care Changes Ahead survey, which found that 37% of employers think private exchanges are a reasonable alternative to traditional employer coverage in 2014.
See Figure.  M. M. Doty, S. R. Collins, S. D. Rustgi, and J. L. Nicholson, Out of Options: Why So Many Workers in Small Businesses Lack Affordable Health Insurance, and How Health Care Reform Can Help, The Commonwealth Fund, September 2009.

Changes in Health Insurance Coverage in the Great Recession, 2007-2010

This issue brief examines changes in health insurance coverage over the last decade, with a focus on how changes in the economy, particularly during the “Great Recession” of 2007 to 2009, have affected coverage and the number of uninsured. The paper finds that the number of uninsured grew substantially during the first recession of the decade, increasing by 5 million people from 2000 to 2004; increased more slowly during the brief recovery, growing by 2.1 million people from 2004 to 2007; and then again rose significantly during the Great Recession, rising by 5.7 million people since 2007.
The paper also finds that coverage, especially for children, through the Medicaid and Children’s Health Insurance Programs helped to prevent even more people from being uninsured. While the number of uninsured children declined in recent years, the number of uninsured adults rose. The only notable drop in uninsured adults was for young adults ages 19-25 in 2010, most likely due to the provision of the health reform law that permits young adults to stay on their parents’ insurance. The paper also considers trends in coverage by work status, race and ethnicity, citizenship status and geographical region.
http://kff.org/medicaid/issue-brief/changes-in-health-insurance-coverage-in-the/

Uninsured adults with chronic conditions or disabilities: gaps in public insurance programs.

Pizer SD, Frakt AB, Iezzoni LI. US Department of Veterans Affairs in Boston, MA. 

Health Aff (Millwood). 2009;28(6):w1141-50. http://dx.doi.org/10.1377/hlthaff.28.6.w1141
http://www.ncbi.nlm.nih.gov/pubmed/19843552
Among nonelderly U.S. adults (ages 25-61), uninsurance rates increased from 13.7 percent in 2000 to 16.0 percent in 2005. Despite the existence of public insurance programs, rates remained high for low-income people reporting serious health conditions (25 percent across years) or disabilities (15 percent). Previous research has established that low-income workers, those facing more stringent Medicaid eligibility requirements, and people employed by smaller firms are more likely than others to lack health insurance. Residents of southern states had even higher rates (32 percent with health conditions, 22 percent with disabilities). Those who did not belong to a federally mandated Medicaid eligibility category were about twice as likely as others to be uninsured overall, and uninsurance among this group increased more rapidly over time.
To address this growing problem, President Barack Obama and leaders in Congress passed health insurance reform legislation that is still taking shape. A common feature of the major proposals at this point is that coverage would be expanded by building on existing arrangements. This approach allows people to keep their current insurance if they wish to do so. The Medicaid program is particularly complicated because it is jointly financed and operated by the federal and state governments and because each state has implemented it differently.
See Table 1.

Ultimately, if Congress decides not to eliminate categorical eligibility restrictions, our results indicate that the preservation of eligibility expansions for people with disabilities or chronic conditions would target a population that is particularly vulnerable to uninsurance and its deleterious effects on health.

How Many Are Underinsured? Trends Among U.S. Adults, 2003 And 2007

Cathy Schoen, Sara R. Collins, Jennifer L. Kriss and Michelle M. Doty
Health Aff 2008; 27(4) w298-w309  http://dx.doi.org/10.1377/hlthaff.27.4.w298
With health insurance moving toward greater patient cost sharing, this study finds a sharp increase in the number of underinsured people. Based on indicators of cost exposure relative to income, as of 2007 an estimated twenty-five million insured people ages 19–64 were underinsured—a 60 percent increase since 2003. The rate of increase was steepest among those with incomes above 200 percent of poverty, where underinsurance rates nearly tripled. In total, 42 percent of U.S. adults were underinsured or uninsured. The underinsured report high levels of access problems and financial stress. The findings underscore the need for policy attention to benefit design, to assure care and affordability.
See Table 1 and Table 2
About seven in ten underinsured adults had annual incomes below $40,000 or below 300 percent of poverty—similar to the income distribution of the uninsured. In contrast, nearly two-thirds of those with more adequate insurance had incomes above $40,000. Underinsured adults were more likely than either of the other two groups to have health problems.
Based on a composite access indicator that included going without at least one of four needed medical care services, more than half of the underinsured and two-thirds of the uninsured reported cost-related access problems during the year. Among adults with at least one chronic health problem, half of uninsured adults and two in five underinsured adults said that they skipped doses of or did not fill a prescription for their condition because of cost—double to triple the rate reported by those insured all year, not underinsured.

Healthcare Costs: Another Top 1% Issue

By Chris Kaiser, Cardiology Editor, MedPage Today  Sep 11, 2013  http://www.medpagetoday.com/TheGuptaGuide/PublicHealth/41539

In the U.S., the top 1% of patients ranked by their healthcare expenses accounted for 21% of total healthcare expenditures in 2010, with an annual mean expenditure of $87,570, according to 2010 Medical Expenditure Panel Survey from the Agency for Healthcare Research and Quality in Rockville, Md.  In addition, the top 5% of the U.S. population ranked by healthcare expenses accounted for half of the total of healthcare expenditures, with an annual mean expenditure of $40,876, wrote Steven B. Cohen, PhD, and Namrata Uberoi, MPH, in the Statistical Brief No. 421.  Both of these figures are down from 1996, when the top 1% accounted for 28% of the total healthcare expenditures and the top 5% accounted for slightly more than half.  The total healthcare expenditures for 2010 were $1.26 trillion.

It is important that policy makers are aware of the the “concentration of healthcare expenditures … to help discern the factors most likely to drive healthcare spending and the characteristics of the individuals who incur them,” the authors noted.

Overall, there was a huge divide between the top and bottom 50% of the population in terms of total healthcare expenses. The top 50% accounted for 97% of total healthcare costs, while the lower 50% accounted for only 3% of the total healthcare expenditures.  In terms of income status,

  • the top 5% of those designated as poor accounted for 57% of the total healthcare expenditures, with an annual mean expenditure of $46,600, while
  • the top 5% of those in the highest income group accounted for 45% of the total healthcare expenditures, with an annual mean expenditure of $40,800.

The report also broke down healthcare spending by the number of chronic conditions, age, race/ethnicity, sex, and insurance. The survey found that chronic diseases take a big chunk of healthcare dollars.

The top 5% of those with four or more chronic conditions accounted for 30% of all healthcare expenditures, with an annual mean of $82,000 — a figure that is

  • seven times higher than those in the top 5% with no chronic diseases and nearly
  • three times higher than the top 5% with one chronic condition.

A report from 2012 found that Medicare could cut up to 10% of its spending if it focused on chronic disease prevention and coordinated care for those with chronic conditions.   Conditioned on insurance coverage status, the uninsured had the most concentrated levels of healthcare expenditures and the lowest annual mean expenses. Regarding public insurance, the top 5% accounted for 56% of the total healthcare expenditures.

Virtually every state experienced deteriorating access to care for adults over the past decade

GM Kenney, S Zuckerman, D Goin, S McMorrow, Urban Institute  May 2012

We use the Behavioral Risk Factor Surveillance System (BRFSS) to examine state-level changes in three key access indicators over the past decade. Specifically, we explore changes in the likelihood of having unmet medical needs due to cost, receiving a routine checkup, and receiving a dental visit for all nonelderly adults and for the subgroup of uninsured adults. We also consider differentials in access between uninsured and insured adults within each state in 2010, and how these differences are reflected in the relationship between access to care and state-level uninsurance rates.

We find that the deterioration in access to care observed in national trends during the past decade was evident in virtually every state in the country. Similarly, consistent with the national trends, the situation deteriorated more for the uninsured than for other adults in most states, which exacerbated the differentials in access and use between the insured and uninsured that had prevailed at the beginning of the previous decade. At the end of the decade, the uninsured in every state were at a dramatic disadvantage relative to the insured across the three access measures we examined. This analysis suggests that the potential benefits of the coverage expansion in the Affordable Care Act (ACA) are large and exist in every state.

We also found that states with higher uninsurance rates have worse access to care for all three measures, which implies that these states have the most to gain from the ACA. In particular, the ACA coverage expansion has the potential to reduce unmet needs due to costs and other cost-related barriers, problems that are more severe in states with high uninsurance rates.

DOCUMENTATION ON THE URBAN INSTITUTE’S AMERICAN COMMUNITY SURVEY-HEALTH INSURANCE POLICY SIMULATION MODEL (ACS-HIPSM)

Matthew Buettgens, Dean Resnick, Victoria Lynch, and Caitlin Carroll    May 21, 2013

We use the Urban Institute’s American Community Survey – Health Insurance Policy Simulation Model (ACS-HIPSM) to estimate the effects of the Affordable Care Act on the non-elderly at the state and local level. This model builds off of the Urban Institute’s base HIPSM, which uses the Current Population Survey (CPS) as its core data set, matched to several other data sets including the Medical Expenditure Panel Survey-Household Component (MEPS-HC), to simulate changes under ACA. To create HIPSM-ACS, we apply the core behavioral components of the base HIPSM to ACS records to exploit the much larger sample size for more precise estimates at the state and sub-state level. The modeling on the ACS-HIPSM produces projections of coverage changes related to state Medicaid expansions, new health insurance options, subsidies for the purchase of health insurance, and insurance market reforms (see Appendix 1 for more detail on HIPSM).

We simulate eligibility for Medicaid/CHIP and subsidies using the Urban Institute Health Policy Center’s ACS Medicaid/CHIP Eligibility Simulation Model, which builds on the model developed for the CPS ASEC by Dubay and Cook.  (Dubay, L. and A. Cook. 2009. “How Will the Uninsured be Affected by Health Reform?” Washington, DC: Kaiser Commission on Medicaid and the Uninsured.)

We simulate both pre-ACA eligibility and the MAGI-based eligibility introduced by the ACA. This allows us to simulate different scenarios for Medicaid maintenance-of-eligibility under the ACA. The distinction between pre-ACA eligible and newly eligible is also important in determining the share of a beneficiary’s costs paid by the federal government.

Using the three-year pooled sample, the model simulates eligibility for comprehensive Medicaid and CHIP coverage or subsidy using available information on the regulations for implementing the ACA, including the amount and extent of income disregards for eligibility pathways that do not change under the ACA and for maintenance-of-eligibility for each program and state in place as of approximately June 2010.

Under the ACA income eligibility is based on the IRS tax definition of modified adjusted gross income (MAGI), which includes the following types of income for everyone who is not a tax-dependent child: wages, business income, retirement income, investment income, Social Security, alimony, unemployment compensation, and financial and educational assistance (see Modeling Unemployment Compensation in the appendix). MAGI also includes the income of any dependent children9 required to file taxes, which for 2009 is wage income greater than $5,700 and investment income greater than $950. To compute family income as a ratio of the poverty level, we sum the person-level MAGI across the tax unit.

Current eligibility is determined based on state rules for 2010. State rules include income thresholds for the appropriate family7 size, asset tests, parent/family status, and the amount and extent of disregards8, for each program and state in place as of the middle of 2010 .

we estimate two separate probit models, each with the following covariates:

  1. Age Category: 0 – 5, 6 – 18, 19 – 44, 45 – 64.
  2. Health Status
  3. Worker Status (Household Level)
  4. Wage (Logarithmic Transformation)
  5. HIU Income to Poverty Threshold Ratio
  6. Number of Children
  7. Presence of a child in Public Coverage
  8. Citizenship Status
  9. Number of Adults in the Family

The dependent variable is an indicator of non-group non-exchange policy holder status. Again we compare each respondent’s predicted probability to a standard uniform random number and assign enrollment in the non-group non-exchange to those observations with probabilities that exceed the random number. Appendix Table 5 shows the overall new enrollment in the non-group non-exchange coming out of our model. It shows that the large majority of non-group enrollees outside the exchange are expected to come from single-person policyholders.

We develop a model, again based on HIPSM output, to predict which single ESI policy holders in the ACS are likely to switch to a family plan. We restrict our model to HIUs in which there is at least one single policy holder and at least one other member of the HIU that could potentially be covered by an ESI family plan. The eligible dependents include those with baseline non-group or uninsurance that had not already taken up coverage in a previous model. Note that we only model moving from an individual plan to a family plan; we did not model adding a dependent to a current family plan. Within the eligible group of single ESI policy holders, we use the following covariates to estimate the probability that they will switch to a family ESI policy:

  1. HIU Type: Individual, Unmarried with child, Married without Child, or married with children
  2. Age Category: 0 – 5, 6 – 18, 19 – 44, 45 – 64.
  3. Health Status
  4.  Worker Status (Individual Level)
  5. •Wage (Logarithmic Transformation)
  6. •HIU Income to Poverty Threshold Ratio
  7. •HIU Income to Poverty Threshold Categories (<138% FPL, 138% – 200% FPL, 200% – 300% FPL, 300% – 400% FPL, 400%+ FPL)
  8. •Number of Children
  9.  Presence of a child in Public Coverage
  10.  Citizenship Status
  11.  Firm Size
  12.  Education Status

These estimates assume that the ACA is fully implemented with the Medicaid expansion in all states and that the same basic implementation decisions are made across the states. At the time of writing, even states such as Massachusetts which have been on the forefront of ACA implementation had not finalized their plans, so any modeling of variation in state decisions would necessarily involve a lot of guesswork. Also, it will take several years for enrollment in new programs such as the exchanges and Medicaid expansion to ramp up so the full effects that are estimated under the simulation model would not be felt until 2016 or later. Enrollment in the initial years would also be affected by state and federal decisions. For example, in the proposed rules released by HHS in January 2012, the deadline for establishing unified eligibility and enrollment between Medicaid and the exchange was pushed back to 2015.

Health insurance status change and emergency department use among US adults.

Ginde AA, Lowe RA, Wiler JL.
Department of Emergency Medicine, University of Colorado School of Medicine, Aurora, CO.   http://www.ncbi.nlm.nih.gov/pubmed/22450213 
Arch Intern Med. 2012 Apr 23;172(8):642-7.   http://dx.doi.org/10.1001/archinternmed
Recent events have increased the instability of health insurance coverage. We compared emergency department (ED) use by newly insured vs continuously insured adults and by newly uninsured vs continuously uninsured adults. Overall, 20.7% of insured adults and 20.0% of uninsured adults had at least 1 ED visit. However, 29.5% of newly insured adults compared with 20.2% of continuously insured adults had at least 1 ED visit. Similarly, 25.7% of newly uninsured adults compared with 18.6% of continuously uninsured adults had at least 1 ED visit. After adjusting for demographics, socioeconomic status, and health status, recent health insurance status change was independently associated with greater ED use for newly insured adults (incidence rate ratio [IRR], 1.32; 95% CI, 1.22-1.42 vs continuously insured adults) and for newly uninsured adults (IRR, 1.39; 95% CI, 1.26-1.54 vs continuously uninsured adults). Among newly insured adults, this association was strongest for Medicaid beneficiaries (IRR, 1.45) but was attenuated for those with private insurance (IRR, 1.24) (P < .001 for interaction). Recent changes in health insurance status for newly insured adults and for newly uninsured adults were associated with greater ED use.

Health Insurance and Access to Health Care in the United States

Catherine Hoffman, Julia Paradise
Annals of the New York Academy of Sciences 2008; 1136.    http://dx.doi.org/10.1196/annals.1425.007 
Reducing the Impact of Poverty on Health and Human Development: Scientific Approaches pages 149–160, June 2008

In the United States, where per capita health care costs are the highest in the world and continue to escalate, health insurance has become nearly essential. Having reasonable access to health care rests on many factors: the availability of health services in a community and personal care-seeking behavior, for example. However, these and other factors are often trumped by whether a person can afford the costs of needed care. Health insurance enables access to care by protecting individuals and families against the high and often unexpected costs of medical care, as well as by connecting them to networks and systems of health care providers.
Health insurance, poverty, and health are all interconnected in the United States. This article synthesizes a large and compelling body of health services research, finding a strong association between health insurance coverage and access to primary and preventive care, the treatment of acute and traumatic conditions, and the medical management of chronic illness. Moreover, by improving access to care, health insurance coverage is also fundamentally important to better health care and health outcomes. Research connects being uninsured with adverse health outcomes, including declines in health and function, preventable health problems, severe disease at the time of diagnosis, and premature mortality.
Most working-age adults obtain health coverage for themselves and their dependents as a benefit of employment. However, this benefit has been gradually eroding as health premiums, in tandem with higher health care costs, grow at a rate far outpacing rates of general inflation and wages. In 2005, 61% of the nonelderly had insurance through an employer, down from 66% in 2000.1 Low-wage workers are far less likely than higher-wage workers to have access to job-based coverage. In 2005, more than half of workers in poor families and more than a third of those in near-poor families had no offer of job-based coverage in the family.2 When it is available, health insurance is often unaffordable for low-income people, whose household budgets are strained to meet food, housing, and other basic needs.

Figure 1. Health insurance coverage of the nonelderly population, 2006.

http://onlinelibrary.wiley.com/store/10.1196/annals.1425.007/asset/image_n/NYAS_1136007_f1.gif    Source: Kaiser Commission on Medicaid and the Uninsured/Urban Institute analysis of Current Population Survey, March 2007.
Those with Medicaid coverage are the most likely to be in fair or poor health because the program’s eligibility requirements include being severely disabled and/or low-income (fig. 2).

Figure 2. Percentage of U.S. nonelderly population reporting fair or poor health, by income and insurance status, 2006.

http://onlinelibrary.wiley.com/store/10.1196/annals.1425.007/asset/image_t/NYAS_1136007_f2_thumb.gif       Source: Kaiser Commission on Medicaid and the Uninsured/Urban Institute analysis of Current Population Survey, March 2007.
The model for healthcare reform was selected from that enacted in Massachusetts. Important statements from the Massachusetts Act are as follows:
to promote patient-centeredness by, including, but not limited to, establishing

  • 1137 mechanisms to conduct patient outreach and education on the necessity and benefits of care
  • 1138 coordination, including group visits and chronic disease self-management programs;
  • 1139 demonstrating an ability to effectively involve patients in care transitions to improve the
  • 1140 continuity and quality of care across settings,
  • 1146 establishing mechanisms to protect patient provider choice,

Individual Mandate

A provision called the individual mandate, requires all Americans to buy some form of health insurance. Whether it is constitutional was in question before the Supreme Court. While the mandate is separate from the provision allowing young adults up to the age of 26 to be covered under their parents’ policies, the court could have decided to scrap the entire law — instead of just the mandate — leaving millions of young adults in the lurch. The mandate was upheld.

For many young adults, affording health insurance on their own will be particularly difficult.  The unemployment rate for young adults age 16 to 24 was 16.4% in March, twice the national average for the population as a whole.  And many of those who do find jobs, often aren’t being offered health benefits.  Less than a quarter, or 24%, of workers between the ages of 19 and 25 were offered health insurance by their employers in 2010, down from 34% in 2000, according to the Employee Benefit Research Institute, an independent public policy organization. Meanwhile, nearly 57% of the rest of the working population between the ages of 26 and 64 were covered.

B. Economics of Universal Delivery of Care – Stakeholders’ Trade offs

There is no question that repealing the Affordable Care Act would cause health costs to skyrocket, particularly for seniors who rely on Medicare to help pay for their healthcare.
According to a new report released by the Kaiser Family Foundation, a healthcare analysis non-profit, repealing the Affordable Care Act would be disastrous for seniors, who would be forced to pay higher premiums, prescription drug costs, and copayments.
According to the report, if health care reform is repealed:
  • Medicare Part A deductibles and copayments would increase.
  • Part B premiums would go up.
  • Savings from closing the Part D donut hole would be eliminated, and the gap in prescription drug coverage would be reopened; under the Affordable Care Act, an estimated 3.6 million Medicare Part D beneficiaries saved an average of $600 each in 2011 once they hit the donut hole, and the donut hole will be closed by 2020.
  • Free preventive services would be eliminated; under the Affordable Care Act, seniors can now get many preventive services for free, including an annual wellness visit, mammograms and other cancer screenings, and other important health services.

U.S. Faces Crisis in Cancer Care

http://www.biosciencetechnology.com/videos/2013/09/us-faces-crisis-cancer-care?et_cid=3474892&et_rid=442219320

Wed, 09/11/2013

Delivery of cancer care in the U.S. is facing a crisis stemming from a combination of factors—a growing demand for such care, a shrinking oncology work force, rising costs of cancer care, and the complexity of the disease and its treatment, says a new report from the Institute of Medicine. The report recommends ways to respond to these challenges and improve cancer care delivery, including by strengthening clinicians’ core competencies in caring for patients with cancer, shifting to team-based models of care, and communicating more effectively with patients.

Adding to stresses on the system is the complexity of cancer and its treatment, which has grown in recent years with the development of new therapies targeting specific abnormalities often present only in subsets of patients. Incorporating this new information into clinical care is challenging, the report says. Given the disease’s complexity, clinicians, patients, and patients’ families can find it difficult to formulate care plans with the necessary speed, precision, and quality; as a result, decisions about cancer care are often not sufficiently evidence-based.

Another challenge is the cost of cancer care, which is rising faster than other sectors of medicine, having increased from $72 billion in 2004 to $125 billion in 2010, says the report.  The single largest insurer for those over 65, the Centers for Medicare and Medicaid Services (CMS), is struggling financially.

The report recommends strategies for improving the care of cancer patients, grounded in six components of high-quality cancer care. The components are ordered based on the priority level with which they should be addressed.

  1. Engaged patients. The cancer care system should support patients in making informed medical decisions that are consistent with their needs, values, and preferences. Cancer care teams should provide patients and their families with understandable information about the cancer prognosis and the benefits, harms, and costs of treatments. The National Cancer Institute, the Centers for Medicare and Medicaid Services, and other stakeholders should improve the develop­ment and dissemination of this critical informa­tion, using decision aids when possible.  Patients with advanced cancer face specific communication and decision-making needs, and cancer care teams need to discuss their options, such as revisiting and implementing advance care plans. However, these difficult conversations do not occur as often as they should; recent studies found that 65 percent to 80 percent of cancer patients with poor prognoses incorrectly believed their treatment could result in a cure.
  2. An adequately staffed, trained, and coordinated work force. New models of team-based care are an effective way to promote coordinated cancer care and to respond to existing work-force shortages and demographic changes. And to achieve high-quality cancer care, the work force must include enough clinicians with essential core competencies for treating patients with cancer. Professional organizations that represent those who care for patients with cancer should define these core competencies, and organizations that deliver cancer care should ensure their clinicians have those skills.
  3. Evidence-based cancer care. A high-quality cancer care delivery system uses results from scientific research to inform medical decisions, but currently many medical decisions are not supported by sufficient evidence, the report says. Clinical research should gather evidence of the benefits and harms of various treatment options so that patients and their cancer care teams can make more informed treatment decisions. Research should also capture the impacts of treatment regimens on quality of life, symptoms, and patients’ overall experience with the disease. Additional research is needed on cancer interventions for older adults and those with multiple chronic diseases. The current system is poorly prepared to address the complex care needs of these patients.
  4. A learning health care information technology system for cancer care. A system is needed that can “learn” by enabling real-time analysis of data from cancer patients in a variety of care settings to improve knowledge and inform medical decisions. Professional organizations and the U.S. Department of Health and Human Services should develop and implement the learning health care system, and payers should create incentives for clinicians to participate as it develops.
  5. Translation of evidence into practice, quality measurement, and performance improvement. Tools and initiatives should be delivered to help clinicians quickly incorporate new medical knowledge into routine care. And quality measures are needed to provide a standardized way to assess the quality of cancer care delivered. These measures have the potential to drive improvements in care, inform patients, and influence clinician behavior and reimbursement.
  6. Accessible and affordable cancer care. Currently there are major disparities in access to cancer care among individuals who are of lower socio-economic status, are racial or ethnic minorities, lack health insurance coverage, and are older. HHS should develop a national strategy that leverages existing commu­nity interventions to provide accessible and afford­able cancer care, the report says. To improve the affordability of care, professional societies should publicly disseminate evidence-based information about cancer care practices that are unnecessary or where the harm may outweigh the benefits. CMS and other payers should design and evaluate new payment models that incentivize cancer care teams to provide care based on the best available evidence and that aligns with their patients’ needs. The current fee-for-service reimbursement system encourages a high volume of care, but fails to reward the provision of high-quality care.

Institute of Medicine Calls for Immediate Reforms in Health Care (2012)

By Kimberly Scott, Managing Editor, G2 Intelligence
A new report from the Institute of Medicine released Sept. 6 calls for a broad range of reforms to make timely changes to the U.S. health care system that would provide high-quality care at lower cost. “Unmanageable” complexity in the science and administration of health care, coupled with costs that have increased at a greater rate than the economy as a whole for 31 of the past 40 years, make the status quo “untenable,” said Best Care at Lower Cost: The Path to Continuously Learning Health Care in America.
“If unaddressed, the current shortfalls in the performance of the nation’s health care system will deepen on both quality and cost dimensions, challenging the well-being of Americans now and potentially far into the future,” the report said.
The report, which follows a series of IOM studies on various aspects of the U.S. health care system, was written by the IOM’s 18-member Committee on the Learning Healthcare System in America. It was sponsored by the Blue Shield of California Foundation, the Charina Endowment Fund, and the Robert Wood Johnson Foundation.
A theme of the report is that “health care now must be a team sport,” Smith said. Physicians in private practice interact with as many as 229 other physicians in 117 practices for their Medicare patients, he said. An elderly patient with multiple chronic diseases can be on up to 19 medications a day, he said. About 30 percent of health care spending in 2009, an estimated $750 billion, was wasted on
  • unnecessary services,
  • excessive administrative costs,
  • fraud, and other problems, the report said.
An estimated 75,000 deaths might have been avoided in 2005 if every state had delivered care at the quality of the best-performing state, it said.
The report is available at http://www.iom.edu

Graphical Excursion into National Healthcare Expenditures

Dan Munro, Forbes
According to the Deloitte Center for Health Solutions, this number has been historically underreported – by a significant amount. In their report (The Hidden Costs of U.S. Health Care), they cite two important components that have not been included in tradtional calculations. The first is out-of-pocket spending by consumers on professional services and the second is the “imputed value of supervisory care provided to a friend or family member.” Using a conservative annual growth rate of 4% (from Deloitte’s baseline year of 2010), here’s what Deloitte suggests is our real NHE.

 NHEbyDCforHS1  NHE annual growth rate of 4%

http://blogs-images.forbes.com/danmunro/files/2012/12/NHEbyDCforHS1.png

The Kaiser Family Foundation also provided a comparison of cumulative increases in health insurance premiums – relative to Workers’ Contributions, Inflation and Workers’ Earnings (from 2000 to 2012).

percentageincreasekff  % increase in HI premiums

http://blogs-images.forbes.com/danmunro/files/2012/12/percentageincreasekff.png

Another annual chart is Medscape’s Physician Compensation Report: 2012 Results (slide #2 – 2011 data).

salaries1  physician compensation  (Medscape)

For those that may be relying exclusively on the transformative effects of PPACA (Obamacare) – this chart highlights the nominal impact of PPACA reform on our National Healthcare Expenditure. It’s from a Commonwealth Fund Issue Brief (May, 2010) – The Impact of Health Reform on Health System Spending (Exhibit #3 – page 5).
NHE-BeforeAfter   nominal impact of PPACA reform on our National Healthcare Expenditure  (Commonwealth Fund)
This last one from Mary Meeker’s landmark report – USA, Inc. (slide #111) – is definitely not new but it is foundational. It compares per capita costs and life expectancy across all 34 OECD member countries using OECD data from 2009.
cost1  per capita costs and life expectancy across all 34 OECD member countries using OECD data from 2009.

C. Political Divisions – Destiny of Healthcare Reform

An Oncology Perspective on the Supreme Courts Pending Decision Regarding the Affordable Care Act

By SK Stranne, MG Halgren, P Shughart. Washington, DC.
Beginning on March 26, 2012, the Supreme Court of the United States heard oral arguments regarding challenges to the recent federal health care reform legislation. The Court scheduled this unusually lengthy series of arguments to last for three days—a reflection of both the high stakes and the complexity of the legal issues involved.  We provide a summary of the questions under consideration by the Supreme Court regarding the health care reform legislation, and we explore how the pending decision on this high-profile matter may impact the oncology community.
Congress enacted the reforms through two separate bills. The two laws, the Patient Protection and Affordable Care Act[1] and the Health Care and Education Reconciliation Act of 2010,[2] have become known collectively as the Affordable Care Act (ACA). The Court is not charged with deciding whether the ACA is good health care policy, only constitutionality.

Issues Before the Court

[1] whether Congress has exceeded its powers with respect to two specific provisions of the ACA
One of these provisions is the law’s requirement that individuals maintain a minimum level of health insurance, which is often referred to as the “minimum coverage requirement” or the “individual mandate.” The other contested provision is the law’s expansion of eligibility and financial support for the Medicaid program, through which the federal government provides grants to state governments to help fund health insurance for the poor.
[2] the Obama administration contended that two powers delegated to Congress each provide sufficient authority for the minimum coverage requirement
[a] Immediately preceding the minimum coverage requirement in the text of the ACA itself, Congress offered its own lengthy justification of why the Commerce Clause, which is a provision in the Constitution that delegates to Congress the power of regulating commerce among the states, authorizes this individual mandate.
[b] the problem is … as much as they say, ‘Well, we are not in the market,’ … [the uninsured] haven’t been able to meet the bill for cancer, and the rest of us end up paying because these people are getting cost-free health care.” Ruth Bader Ginsberg.
[c] the Constitution’s Taxing and Spending Clause also gives Congress authority to enact the minimum coverage requirement and collect a penalty for noncompliance via federal income tax returns.
The arguments in favor of the ACA’s Medicaid expansion relied on the Taxing and Spending Clause and also on the Appropriations Clause, both of which are generally regarded as giving Congress significant discretion in dictating how federal funds are spent. However, the Court has previously indicated that Congress may not use its spending power to unduly coerce the states. The ACA’s opponents argued that the Medicaid expansion is unconstitutionally coercive because it attaches new terms (ie, the requirement to cover more people) to substantial existing funds (ie, the grants the federal government already gives to the states for the original Medicaid program and its various pre-ACA expansions). Due to the size of the Medicaid program, the argument goes, the states have no real alternative but to continue participating in Medicaid under the ACA’s terms.
The severability discussion concerns whether the Court would strike only the provision in question, only the provision in question plus some closely related provisions, or the entire ACA. The arguments on this issue mainly addressed the minimum coverage requirement and focused on the degree to which certain provisions of the ACA are linked with that provision and what Congress would have intended to occur if the provision were found unconstitutional.

Convergence is Coming: A Brave New World

KPMG Report  by Liam Walsh
Healthcare payers, providers and life sciences companies should be thinking beyond transformation and focus more on convergence and the implications of operating in a collaborative and integrated healthcare delivery model.  This has come about because
  • the business of healthcare is changing to an ‘outcomes-based’ system
  • that compensates organizations based on the effectiveness of a product or service, not as a consumable.
The result is a driver of consolidation, and participants will fall substantially over the next decade. It is expected that the evolving system will bring about significant benefits with a more effective system when the dust settles.  However,patients will have less choice in the market, either due to services having been consolidated with one provider or because payer incentives drive patients to more cost-effective options. But the rapid development of a digitalized data handling with introduction of superior analytics, and moving more information onto ‘smart devices’ is already beginning to transform the way we source, deliver and pay for healthcare services.  The restructuring is transforming the healthcare business models.

Transforming Healthcare: From Volume to Value

KPMG Healthcare & Pharmaceuticals  Sept 2012
Over the next decade, all parts of the healthcare services and life sciences industry will need to change, from revenue based on volume to revenue based on value, to be sustainable and cost effective.  The emphasis on sustainability requires
  • contracting for healthcare value and
  • improving the productivity of the healthcare workforce.
Given the current high costs and variable outcomes, the U.S. healthcare system is undergoing an unprecedented transformation.

Bundle with Care — Rethinking Medicare Incentives for Post–Acute Care Services

Judith Feder, Ph.D.

n engl j med  2013; 369(5):400
Although health policy experts disagree on many issues, they largely agree on the shortcomings of fee-for-service payment. The inefficiency of a payment method that rewards increases in service volume, regardless
of health benefit, has become practically indefensible. But replacing discrete payments for each service with bundled payment for a set of services does not simply promote efficiency; it also potentially promotes
skimping on care or avoidance of costly patients.
The Medicare program already has considerable experience not only with capitation payments to health plans for the full range of Medicare services but also with bundled payments for sets of services: inpatient hospital services are bundled into “stays,” skilled-nursing-facility (SNF) services are bundled into “days,” and home-health-agency (HHA) services are bundled into “episodes.”
The tip-off to the risk involved in offering powerful incentives for these providers to keep costs low is the presence of extremely high and varied profits, in a service area devoid of standards for high-quality care. In 2010, SNFs and HHAs earned profits of 19%, on average, and the top quarter earned in excess of 27%.
In theory these high and widely varying profits might reflect variations in efficiency. But two factors other than relative efficiency probably explain these margins. First is that classification of patients into payment categories for rate-setting purposes
  • is not sufficiently precise to eliminate variation in expected costs among the patients within a category.
Second is the long history of patient selection in nursing homes and recent evidence that the HHAs with the highest profit margins
  • provide fewer visits, despite serving patients with greater measured care needs.
Given the weakness of patient classification and quality norms, policymakers would do well to heed previous advice that, in these circumstances, a hybrid approach better balances efficiency and appropriate care.
Rather than replace fee for service with a single-payment system, I believe we should rely ona hybrid approach in which both savings and risk are shared. Providers would receive a share, rather than the full amount, of any excess payments over the actual costs incurred. Similarly, Medicare would pay a share of any provider costs that exceeded the amount of prospective payments. To encourage efficiency, the system would ensure that providers could earn a sufficient share of profits but would also bear the larger share of losses.
Sharing savings and risk would essentially produce for Medicare, which sets payment rates administratively, profit levels similar to those a competitive market would provide. When some providers are earning  excessive profits in a market, others will offer services at lower prices (earning lower profits) to attract more business. Sharing savings and risk gives Medicare a means of keeping profits high enough to maintain access for beneficiaries, while narrowing the range of profit levels closer to those a competitive market would produce.

Study: Bigger hospitals drive cost increases

By MATT DOBIAS | 5/7/12
For everyone out there worried that President Barack Obama’s health reform law will spur monopolies and make it easier for hospitals to raise their prices, a new study says it’s already happening, and it’s not because of the health law.
A study in the May edition of Health Affairs finds that hospitals’ power to win steep payment increases — and insurers’ relative inability to resist — varies quite a bit from one market to another and from one kind of hospital or hospital network to another. Reputation, location and the type of medical services provided play a role.

State Laws Hinder Obamacare Effort To Enroll Uninsured

President Barack Obama has set aside $67 million to make it easier to enroll in his health-care overhaul. Laws pushed by Republicans in 12 states may keep that from happening. Under the Affordable Care Act, the U.S. government plans to pay a network of local groups known as navigators to explain the law’s new coverage options to the uninsured and guide them through its online insurance markets (Bloomberg News: Nussbaum and Wayne, 8/23/2013).

Modern Healthcare: Reform Update: Employers Take Closer Look At Private Insurance Exchanges

With public small-business insurance exchanges opening Oct. 1, two studies released this week show employer interest in private insurance exchanges is growing. …
  1. the Kaiser Family Foundation found that 29% of employers with 5,000 or more employees are considering private exchanges as an option for buying healthcare coverage for their employees.
  2. A day later, consulting firm Towers Watson released its Health Care Changes Ahead survey, which found that 37% of employers think private exchanges are a reasonable alternative to traditional employer coverage in 2014 (Block, 8/22).

D. Looking in on the ACOs

ObamaCare’s Health-Insurance Sticker Shock

By Merrill Matthews and Mark E Litow, Forbes
Thanks to mandates that take effect in 2014, premiums in individual markets will shoot up.
Central to ObamaCare are requirements that

  1. (1) health insurers accept everyone who applies (guaranteed issue),
  2. (2) cannot charge more based on serious medical conditions (modified community rating), and
  3. (3) include numerous coverage mandates that force insurance to pay for many often uncovered medical conditions.

Guaranteed issue incentivizes people to forgo buying a policy until they get sick and need coverage (and then drop the policy after they get well).  While ObamaCare imposes a financial penalty—

  • —to discourage people from gaming the system,
  • it is too low to be a real disincentive.

The result will be insurance pools that are smaller and sicker, and therefore more expensive.
How do we know these requirements will have such a negative impact on premiums? Eight states—New Jersey, New York, Maine, New Hampshire, Washington, Kentucky, Vermont and Massachusetts—enacted guaranteed issue and community rating in the mid-1990s and wrecked their individual (i.e., non-group) health-insurance markets.
States won’t experience equal increases in their premiums under ObamaCare.  Ironically, citizens in states that have acted responsibly over the years by adhering to standard actuarial principles and limiting the (often politically motivated) mandates will see the biggest increases, because their premiums have typically been the lowest.
While ObamaCare won’t take full effect until 2014, health-insurance premiums in the individual market are already rising, and not just because of routine increases in medical costs. Insurers are adjusting premiums now in anticipation of the guaranteed-issue and community-rating mandates starting next year. There are newly imposed mandates, such as the coverage for children up to age 26, and what qualifies as coverage is much more comprehensive and expensive. Consolidation in the hospital system has been accelerated by ObamaCare and its push for Accountable Care Organizations.
Unlike the federal government, health insurers can’t run perpetual deficits. Something will have to give, which will likely open the door to making health insurance a public utility completely regulated by the government.

Health Insurance Premiums Will Rise

Merrill Matthews, Resident Scholar at Institute for Policy Innovation, Forbes
Subsidies cover a portion of the cost of health insurance, up to a maximum out of pocket for the family. The amount of the subsidy is based both on the cost of coverage and income. There has been a lot of head scratching over how to deal with the fact

  • that a family’s income can vary significantly within a year, up or down, in ways no one predicted at the beginning of the year.

So how does the government determine the correct level of subsidy? The PPACA has so many unknowns in the mix that actuaries don’t know how much to charge. This is a problem for setting annual rates.

Traditionally in the individual market, where people buy their own (i.e., non-group) health coverage, applicants sign a contract and the insurance company guarantees that premium for a year. No more. Health insurers started sending out notices in January informing insurance brokers and agents that

  • the companies will no longer guarantee that premium rate.

After carefully evaluating its individual market and rates, Aetna decided to discontinue its offer of an initial 12-month rate guarantee. This change applies to policies with a January 15, 2013 or later effective date, in all states where plans are sold. Existing members who are currently in a rate guarantee period will not be affected. Aetna published a notice saying in part, “While the policies will not have a 12-month rate guarantee, we fully expect the rates to stay the same until December 31, 2013.” While that announcement may alleviate the concerns of some, Aetna is not the only company ending the rate guarantee.
While the individual market has been relatively small (about 19 million people, according to the Employee Benefit Research Institute) compared to those with employer-based coverage (about 156 million), most honest analysts expect millions of employers to drop coverage and dump their employees into the individual market.

ACOs Can Save Medicare $$$, Study Finds

By David Pittman, Washington Correspondent, MedPage Today. Aug 27, 2013
An accountable care organization (ACO) established by a private insurer reduced costs of care for Medicare enrollees, a study in Massachusetts found.  Providers participating in the Alternative Quality Contract (AQC) — an early commercial ACO backed by Blue Cross Blue Shield of Massachusetts — reduced spending on Medicare beneficiaries by 3.4% after 2 years compared with enrollee costs at nonparticipating providers, ( Journal of the American Medical Association).

Medicare enrollees served by 11 provider groups in the AQC from 2007-2010 were compared with Medicare patients served by non-AQC providers. The study looked at quarterly medical spending and five quality measures, such as avoidable hospitalizations and 30-day readmissions. The AQC started in 2009 with providers bearing a financial risk for spending in excess of a global budget, gaining from spending below the budget, and receiving rewards for meeting performance targets.
Per-enrollee spending was $150 higher for patients of AQC providers than for those of non-AQC providers before the ACO took effect in 2009. Year-1 savings weren’t significant (P=0.18), but

  • by year 2, the AQC lowered Medicare beneficiary spending by 3.4% and the difference in spending between the AQC and non-AQC providers had dropped to $51 (P=0.02)

Savings came from reductions in outpatient services, including

  • office visits,
  • emergency department visits,
  • minor procedures,
  • imaging, and lab tests.

Also, savings were greater in patients with five or more conditions (P=0.002). Previous research showed the AQC reduced quarterly spending on Blue Cross patients by $27 per enrollee in year two.
ACOs have received sour press of late as nine of 32 pioneer ACOs — Medicare’s first and most advanced ACO provider groups — told the agency last month they want to leave the program. Despite that outlook and ACOs’ struggles to achieve consistent cost savings, Medicare-led ACOs (253) now outnumber commercial ACOs (235), according to a recent report from the consulting group Leavitt Partners.

New Care Models Look at Social Factors in Health

By David Pittman, Washington Correspondent, MedPage Today. Aug 22, 2013
Models such as PCMHs, ambulatory intensive care units, and medical neighborhoods should thrive on connecting patients’ clinical care with broader social services that can help provide better housing and other benefits. (ReportingOnHealth.org)
“The medical neighborhood coordinates care for patients at a community level, working with organizations in the community that can help expand the impact of healthcare and, more specifically, focus on the social determinants,” Manchanda (founder and president of HealthBegins) said. “And this fits more into the model of community-centered health home.” (Medicaid Medical Home)

  • Lack of access to good housing, places to exercise, safe neighborhoods, and health food sources make people more vulnerable to heart disease, diabetes, obesity, and other diseases.

Evidence is growing linking people’s physical environments and social conditions to their health. Three in four doctors wished the healthcare system would pay for the cost associated with connecting patients with needed social services. That aspect of the situation is improving with advent of PCMHs and other delivery models which pay for the care coordination of the most at-risk patients. This will be addressed by electronic medical records (EMRs) will help collect social history if EMR vendors provide an avenue for it to be requested and stored. The facilitation of internet communications will allow clinicians to share data with social services about their patients, and connect with patients themselves.

What Do Employers Want From Hospitals? The Rules of the Road

Aegis Health Group. 2013; 5(7).
Corporate America has long viewed the healthcare system as one of the biggest drains on the economy—and on the profitability of businesses nationwide. With the advent of Accountable Care Organizations as the model of the future for managing overall population health, hospitals are ideally positioned to harness this opportunity

  • to build profitable partnerships with employers.

In this paper hospital executives will learn about new approaches to this challenge along with some simple, tried-and-true rules of the road for attaining mutually beneficial partnerships with employers.

Why does Corporate America think the current state of healthcare is a quagmire – and that they are in the middle of it?

COST OF POOR HEALTH IN BILLIONS

 Medical & Pharmaceutical     $227
Wage Replacement                  $117
Lost Productivity                        $232

They are ready to take control of the issues and turn them from business detractors to business advantages. Consider this:

  • »» According to the 17th annual Towers Watson Employer survey on “Purchasing Value in Healthcare,” employee healthcare costs have increased 42 percent since 2007.
  • »» Total costs average more than $11,600 per employee each year, with employers paying out 34 percent more compared to just five years ago.
  • »» Healthcare now costs employers $576 billion annually.
  • »» These dollars relate not only to insurance premiums and the actual cost of care provided, but absenteeism and lost productivity when workers either do not show up or perform marginally on the job due to illness.

On the flip side workers have felt the sting as well. With more employers scaling back benefits or selecting higher-deductible plans, employee out-of-pocket expenses and payroll deductions for premiums increased 82 percent, averaging $5,000 per year according to the same Towers Watson survey. The escalation of healthcare costs almost mirrors the increasingly poor health of U.S. adults. Only one in seven workers are of a normal weight and free from any chronic health conditions, such as diabetes, hypertension or heart disease.
A full 62 percent of employers want to increase employee wellness and preventive health programs. Hospitals are well positioned to provide

  • the medical talent, best practices and expertise required for a comprehensive workforce health initiative (WHI).

As the country moves toward an accountable care model of healthcare delivery, the timing has never been better for hospitals to take a leadership role in developing population health programs in the workplace and beyond.

Employee View: Who provides the greatest value in healthcare?

Primary Care                  60%
Prescription Drugs        50%
Hospitals                         47%
Specialty Care               46%
Wellness Programs      43%
Health Insurance
Plans                               39%
Retail Clinics                  31%
In a Deloitte Center for Health Solutions survey in 2012, employers ranked primary care and hospitals as providing the most value to the healthcare system. Yet it is not unusual for 30 percent of employees to report they have no primary care physician. These are consumers who may be at significant risk for hidden health problems that may become chronic conditions later on. Employers have a vested interest in linking these employees with a primary care doctor sooner rather than later.

What are the Six Sigma Elements of an Effective Workforce Health Initiative?

The most effective workforce health initiatives take a data-driven approach to enhancing the health of a defined population. The five key steps in the Six Sigma process actually reflect the major tactics of a WHI and population health strategy.

 48-Graph-4-30_2012  Age-Adjusted Prevalence of Cardiovascular Disease Risk Factors in Adults, U.S., 1961–2011

49-Graph-4-31_2012  hypertension, treated awareness

52-Graph-4-35_2012  Total Economic Costs of the Leading Diagnostic Groups, U.S., 2009

278px-Preventable_causes_of_death

8443-exhibit-2-7  nonelderly population uninsured

8443-exhibit-2-8  nonelderly uninsured under ACA with all states expanding Medicaid

8443-exhibit-2-3  increase in medicaid_CHIP all states expanding medicaid

Causes_of_death_by_age_group

correlates of in-hospital mortality

healthprices  time price of HC over 50 years

fs310_graph3  leading causes of death by income class worldwide

FUSA_INFOGRAPHIC_50-state-medicaid-expansion_rev_06-27-13_FACEBOOKCOVER

milliman1   2012 Milliman Medical Index

hhs_medicare_docs   participating in and billing Medicare

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The Affordable Care Act: A Considered Evaluation. The Implementation of the ACA, Impact on Physicians and Patients, and the Dis-Ease of the Accountable Care Organizations.

The Affordable Care Act: A Considered Evaluation. Part II: The Implementation of the ACA, Impact on Physicians and Patients, and the Dis-Ease of the Accountable Care Organizations.

Writer and Curator: Larry H. Bernstein, MD, FCAP

and

Curator and Editor: Aviva Lev-Ari, PhD, RN 

Article ID #78: The Affordable Care Act: A Considered Evaluation. The Implementation of the ACA, Impact on Physicians and Patients, and the Dis-Ease of the Accountable Care Organizations. Published on 9/13/2013

WordCloud Image Produced by Adam Tubman

INTRODUCTION

This discussion is the second of two distinct chapters. The first is a clarification of what is contained in the Accountable Care Act (ACA), the model of care it is crafted from, the insurance mandate, the inclusion of groups considered high risk and uninsured, the inclusion of groups low risk and uninsured, and the economics involved in going from a fractured for profit health care industry to a more stable coverage for patients with problems in creating a new workable model from an actuarial standpoint, with the built in complexity of not just age, but education, achievement in the workforce, and a consolidating hospital and eldercare industry, the unpredictability of disease evolution, and add on the multicultural and social structures, as well as rapidly evolving communications and computational platforms needed to transform the U.S. Healthcare system.. The second is taken from selected articles on the care process in the New England Journal of Medicine about the cost and consequences for improving quality at lower cost. Dr. Justin Pearlman has chosen this topic to become as the Second Chapter in the Cardiovascular Disease Volume and Dr. Aviva Lev Ari has selected the sub-universe of sources been elaborated on in this Chapter

There are inherent problems at looking at this from a systems point of view, mainly impacted by the relationship of providers to hospitals and clinics, and by the relationships of insurers to the patients and providers in an Accountable Care Organization (ACO) model. These relationships have been evolving for many decades, first with the increased availability of highly skilled medical specialists trained in numerous university-based programs funded by Training Grants from the National Institutes of Health, then a high concentration of these skilled physicians in metropolitan locations, where there was an adequate patient-base for developing groups of refering physicians. Prior to WWII, there were many Asian physicians receiving their postgraduate training in the U.K. The number of foreign graduates coming to the U.S. Increased enormously with the opportunities that opened up in U.S. The first change in medical education that created a science-based professional came after the Flexner Report in 1910, sponsored by the Carnegie Endowment. Many aspects of the present-day American medical profession stem from the Flexner Report and its aftermath.The Report (also called Carnegie Foundation Bulletin Number Four) called on American medical schools to enact higher admission and graduation standards, and to adhere strictly to the protocols of mainstream science in their teaching and research. Joseph Goldberger discovered the cause of pellagra in 1916.  When the 1918 influenza pandemic struck Washington, physicians from the then PHS laboratory were pressed into service treating patients in the District of Columbia because so many local doctors fell ill.

goldberger 1916 Pellagra

http://www.nih.gov/about/lmedia/goldberger.jpg

In 1930, the Ransdell Act changed the name of the Hygienic Laboratory to National Institute (singular) of Health (NIH) and authorized the establishment of fellowships for research into basic biological and medical problems. The roots of this act extended to 1918, when chemists who had worked with the Chemical Warfare Service in World War I sought to establish an institute in the private sector to apply fundamental knowledge in chemistry to problems of medicine. In 1926, after no philanthropic patron could be found to endow such an institute, the proponents joined with Louisiana Senator Joseph E. Ransdell to seek federal sponsorship. The truncated form in which the bill was finally enacted in 1930 reflected the harsh economic realities imposed by the Great Depression. Nonetheless, this legislation marked a change in the attitude of the U.S. scientific community toward public funding of medical research.

bengston_lg nurse in bacteriology lab of NIH

http://history.nih.gov/exhibits/history/assets/images/bengston_lg.jpg

cholera_sm cholera epidemic of 19th century (Koch bacillus)

http://history.nih.gov/exhibits/history/assets/images/cholera_sm.jpg

Vaccines and therapies to deal with tropical diseases were also critically important to the WWII war effort by the PHS. At the NIH’s Rocky Mountain Laboratory in Hamilton, Montana, yellow fever and typhus vaccines were prepared for military forces. In Bethesda as well as through grants to investigators at universities a synthetic substitute for quinine was sought to treat malaria.  Research in the Division of Chemotherapy revealed that sodium deficiency was the critical element leading to death after burns or traumatic shock. This led to the widespread use of oral saline therapy as a first-aid measure on the battlefield. NIH and military physiologists collaborated on research into problems related to high altitude flying. As the war drew to a close, PHS officials guided through Congress the 1944 Public Health Service Act, which defined the shape of medical research in the post-war world. Two provisions in particular had an impact on the NIH. First, in 1946 the successful grants program of the NCI was expanded to the entire NIH. From just over $4 million in 1947, the program grew to more than $100 million in 1957 and to $1 billion in 1974. The entire NIH budget expanded from $8 million in 1947 to more than $1 billion in 1966. Between 1955 and 1968. In this period, there was expansion of the NIH extramural budget, as well, and the grants dispursed were in support of developing the medical faculty of the future. It has nothing to do with then organization of the practice of medicine, but it has contributed much to the widespread quality of american medical education.

flowchart_sm NIH 1949

http://history.nih.gov/exhibits/history/assets/images/flowchart_sm.jpg

 As the cost of healthcare was increasing, mainly after the Korean and Vietnam War periods, there was a medically initiated concept of a National not-for-profit health maintenance organization (HMO), which would be modeled after the likes of Mayo Clinic, Cleveland Clinic, the Kaiser Permanente Plan, and Geisinger. But the insurance industry was already mature, and the hospitals were closely tied to Aetna, CIGNA, and Blue Cross Blue Shields, which had the actuarial pieces needed. Then an HMO industry emerged with a for-profit motive. As the U.S. Became enmesshed in two military engagements in Iraq and Afganistan for a full decade, there was a fierce competition between the need to support military requirements and the need to support the welfare of the community, with brilliant accelerated achievements that brought the Human Genome Project to a successful conclusion in 2003, and from that emerged advances in both clinical laboratory diagnostics and imaging, and which portends to continuing significant advances in treatments in cardiology, surgery, endocrinology, and cancer. In order to succeed, there has been a redesign or rearrangement of how these services are delivered, with a business model intended to – in time – bring down costs, and to also improve quality. Ironically, there is an insufficiency of primary care physicians, even considering internal medicine, pediatrics, obstetrics, and general surgery, as well as osteopathic physicians.

Part I. The Establishment, Structure, and Nature of the Accountable Care Act (ACA)

Part II. The Implementation of the ACA, Impact on Physicians and Patients, and the Dis-Ease of the Accountable Care
Organizations.

Failure to Launch? The Independent Payment Advisory Board’s Uncertain Prospects

Jonathan Oberlander, Ph.D., and Marisa Morrison, B.A.
N Engl J Med 2013; 369:105-107July 11, 2013 http://dx.doi.org/10.1056/NEJMp1306051

The Affordable Care Act (ACA) established the IPAB as a 15-member, nonelected board. Among other duties, the IPAB is empowered to recommend changes to Medicare if projected per-beneficiary spending growth exceeds specified targets. If Congress does not enact legislation containing those proposals or alternative policies that achieve the same savings, the IPAB’s recommendations are to be implemented by the secretary of health and human services. President Obama has proposed strengthening the board’s role by lowering the Medicare spending targets that would trigger IPAB action.

Because the board is prohibited by law from making recommendations that raise revenues, increase cost sharing of Medicare beneficiaries, or restrict benefits and eligibility, it is expected to focus on savings from medical providers. In January 2013, the GOP adopted a House rule declaring that the IPAB “shall not apply” in the current Congress, thereby rejecting the special procedures that the ACA had established for congressional consideration of IPAB recommendations.

On April 30, the chief actuary of the Centers for Medicare and Medicaid Services released a report projecting Medicare spending growth during 2011–2015. According to the report, per-person Medicare spending will grow at an average rate of 1.15% during that period, far below the target growth rate set by the ACA — the average of the Consumer Price Index (CPI) and the Medical CPI (see graph).

8443-exhibit-2-3 increase in medicaid_CHIP all states expanding medicaid50-Graph-4-33_2012 Hospitalization Rates for Heart Failure, Ages 45–64 and 65 and Older, U.S., 1971–2010

8443-exhibit-2-7 nonelderly population uninsured52-Graph-4-35_2012 Total Economic Costs of the Leading Diagnostic Groups, U.S., 2009

http://www.nejm.org/na101/home/literatum/publisher/mms/journals/content/nejm/2013/nejm_2013.369.issue-2/nejmp1306051/20130708/images/small/nejmp1306051_f1.gif

Projected Growth in Medicare Per Capita Spending, the Consumer Price Index (CPI), and the Medical CPI, 2011–2015.

       healthprices time price of HC over 50 yearsjournal.pmed.0020133.g001 Global Mortality and Burden of Disease Attributable to Cardiovascular Diseases and Their Major Risk Factors for People 30 y of Age and Older

NHEbyDCforHS1 NHE annual growth rate of 4%      percentageincreasekff % increase in HI premiums

journal.pmed.0020133.t001 Risk and Socioeconomic Variables Used in the Analysis     T1.large uninsured by health and disability by region 2000-2005

T3.large uninsured by medicaid eligibility        T5 Characteristics Of Insurance, By Insurance Adequacy, Among Insured Adults Ages 19–64, 2007

The rate of increase in Medicare expenditures per enrollee has slowed since 2006, and because Medicare spending growth has moderated, the IPAB will be irrelevant to cost containment. 3 years after the ACA’s enactment, the IPAB still has no members. If no members are appointed, the power to recommend changes to Medicare when spending targets are exceeded does not disappear: it reverts to the secretary of health and human services.

The board’s appeal lies largely in its aspiration to remove politics from Medicare — to create a policymaking process that is informed by experts and insulated from pressures outside their professional overview. If Medicare spending growth accelerates, the IPAB’s role could expand. But that future is uncertain.

Causes_of_death_by_age_group

The Road Ahead for the Affordable Care Act

John E. McDonough, Dr.P.H.
N Engl J Med 2012; 367:199-201 http://dx.doi.org/10.1056/NEJMp1206845
http://www.nejm.org/doi/full/10.1056/NEJMp1206845

The Affordable Care Act (ACA), the U.S. health care reform law enacted in 2010, was upheld as constitutional by the U.S. Supreme Court on June 28, 2012. As a result of the Court’s ruling –

  • the individual responsibility requirement (the individual mandate to obtain insurance coverage),
  • insurance reforms such as the elimination of coverage exclusions for preexisting conditions,
  • the establishment of state health insurance exchanges, and
  • the provision of private health insurance subsidies

stand unaltered despite the Court-ordered switch in the basis for constitutional legitimacy from the Commerce Clause to Congress’s taxing authority.

One consequential outcome of the ruling is the continuing benefit, and harm averted, for millions of Americans from ACA provisions that have already been implemented. Those benefiting include more than 6 million young adults enrolled in their parents’ insurance plans, 5.2 million Medicare enrollees who have saved on prescription-drug costs because of the shrinking Part D “doughnut hole,” 600,000 new adult Medicaid enrollees in seven states that have already expanded Medicaid eligibility, 12.8 million consumers who will receive more than $1 billion in insurance-premium rebates, and many others.

Also undisturbed are the ACA’s numerous system reforms, such as accountable care organizations, patient-centered medical homes, the Prevention and Public Health Fund, and the Patient-Centered Outcomes Research Institute. Since the ACA’s passage, health system innovation has surged — a dynamic that would have been undermined by a negative Court ruling.

The biggest change involves Medicaid. The ACA required that Medicaid serve nearly all legal residents with incomes below 138% of the federal poverty level. As a result, there is a new inequity in the health system: by 2014, all Americans will have guaranteed access to affordable health insurance except adults with incomes below the poverty level who were previously ineligible for Medicaid (those with incomes between 100 and 138% of the poverty level will be allowed to obtain coverage through insurance exchanges). States have strong economic incentives to expand Medicaid, since the federal government will pay 100% of expansion costs between 2014 and 2016. By 2020, the federal share will drop to no less than 90% — much more generous than the 50 to 83% that the federal government contributes for traditional Medicaid and the Children’s Health Insurance Plan.

The current implementation queue includes writing definitions and rules for private health insurance markets, clarifying rules for determining required “essential health benefits,” explaining how employer-responsibility provisions will be devised, and much more. The ACA is the first U.S. law to attempt comprehensive reform touching nearly every aspect of our health system. The law addresses far more than coverage, including health system quality and efficiency, prevention and wellness, the health care workforce, fraud and abuse, long-term care, biopharmaceuticals, elder abuse and neglect, the Indian Health Service, and other matters.

Encouraging competition among health plans, even if one of them is “public,” will also fail to solve the cost problem. With the exception of highly integrated organizations, such as Kaiser Permanente, health plans have only two tools to control costs: financial disincentives for patients and fee reductions for providers. Acceptable out-of-pocket maximums, however, vitiate economic incentives to restrain use, particularly for expensive care such as inpatient care. Unable to alter provider behavior, health plans primarily try to avoid enrolling people who are likely to need costly care.

Budget Sequestration and the U.S. Health Sector

McDonough J.E.N Engl J Med 2013; 368:1269-1271 http://dx.doi.org/10.1056/NEJMp1303266

In August 2011, in an agreement to raise the nation’s debt ceiling, bipartisan majorities in the House and Senate approved the Budget Control Act of 2011 (BCA) to reduce the deficit by $1.2 trillion between 2013 and 2021. The BCA established a threat of across-the-board cuts, or “sequestration,” if the Joint Select Committee on Deficit Reduction failed to approve, and Congress to enact, alternative reductions. Sequestration became operational on March 1. Of the $1.2 trillion in cuts, $216 billion will be reductions in debt-service payments, and the remaining $984 billion will be split evenly over 9 years at $109 billion per year, and further adjusted and split evenly between cuts to national defense and nondefense functions at $42.667 billion each.

T2.large Adults Ages 19–64 Who Were Uninsured And Underinsured, By Various Characteristics, 2003 And 2007   T3.large uninsured by medicaid eligibility

The $42.667 billion per year in nondefense cuts will not fall equally on all health-related government programs. Nonexempt and nondefense discretionary funding faces reductions of 7.6 to 8.2% in this fiscal year; certain programs such as Medicare and community health centers will have 2% reductions; and certain programs such as Medicaid and the Veterans Health Administration are exempt.

nejmp1303266_t1 Impact of Budget Sequestration on Key Federal Health and Safety Programs,

Impact of Budget Sequestration on Key Federal Health and Safety Programs, Fiscal Year 2013.

http://www.nejm.org/na101/home/literatum/publisher/mms/journals/content/nejm/2013/nejm_2013.368.issue-14/nejmp1303266/20130618/images/small/nejmp1303266_t1.gif

Medicare funding will be cut by 2% ($11.08 billion) through reductions in payments to hospitals, physicians, and other health care providers, as well as insurers participating in Medicare Advantage (Part C). The BCA prohibits cuts affecting premiums for Medicare Parts B and D, cost sharing, Part D subsidies, and Part A trust-fund revenues. The sequestration cuts arrive just as Medicare is beginning to fully implement the savings and cuts required by the Affordable Care Act (ACA), which the Congressional Budget Office estimates will slow Medicare’s rate of growth by $716 billion between 2013 and 2022. The National Institutes of Health (NIH) faces an 8.2% across-the-board reduction for the 7 months remaining in fiscal 2013, equaling cuts of $1.55 billion.

The Centers for Disease Control and Prevention (CDC), which is still recovering from major budget reductions in 2011, anticipates effective reductions of 8 to 10% for the remainder of the year. The American Public Health Association has projected that the reductions could result in 424,000 fewer HIV tests (the CDC funded 3.26 million in 2010) and 50,000 fewer immunizations for adults and children (from a baseline of about 300 million), elimination of tuberculosis programs in 11 states, and shutting down of the National Healthcare Safety Network.

Unaffected for all 9 years of the sequester are most expenses associated with the ACA. Medicaid is exempt, as is funding for its expansion, beginning next January, to all lower-income Americans in states that choose to participate. Also exempt are private insurance subsidies that will be available next January through new health insurance exchanges, because they were designed as refundable tax credits, another BCA-exempt category. Finally, the Children’s Health Insurance Plan, the Supplemental Nutrition Assistance Program, Temporary Assistance to Needy Families, and Supplemental Security Income are all exempt.

Threading the Needle ‹ Medicaid and the 113th Congress

fs310_graph3 leading causes of death by income class worldwideFUSA_INFOGRAPHIC_50-state-medicaid-expansion_rev_06-27-13_FACEBOOKCOVER

Rosenbaum S.N Engl J Med 2012; 367:2368-2369 http://dx.doi.org/10.1056/NEJMp1213901

Medicaid is a veteran of decades of warfare over its size and cost. Nevertheless, the program now plays a vital role in the U.S. health care system and a foundational role in health care reform. The central question, as we approach a major debate over U.S. spending and federal deficits, is how to preserve this role and shield Medicaid from crippling spending reductions. The Budget Control Act, which provides the initial framework for this debate, insulates Medicaid from sequestration. Budgetary protections for Medicaid date to the 1980s, but today’s politics are less tolerant of programs for poor and vulnerable populations. Medicaid is also at a deep political disadvantage. Medicaid is unequaled among federal grant programs: more than 60 million children and adults rely on the program, and it’s projected to grow to 80 million beneficiaries by 2020 if all states adopt the eligibility expansion in the Affordable Care Act (ACA). Medicaid’s cost is driven by high enrollment, not excessive per capita spending.2 As a result, there’s very little money to wring out of Medicaid without shaking its structure in ways that reduce basic coverage. Medicaid is part of the base on which health care reform rests; if it is not expanded per the ACA, the nation will lose its chance at near-universal health insurance coverage, which is essential to achieving systemwide savings and halting a $50 billion annual cost shift to insurers and patients. Deep federal spending reductions could lead states to abandon Medicaid expansion as a result of a confluence of factors —

  • the still-fragile nature of many state economies,
  • the continuing ideological opposition to Medicaid expansion, and
  • the Supreme Court decision to permit states to opt out of such expansion altogether.

Considerable evidence shows its effectiveness: most recently, a study by Sommers et al. documented its positive effects on health and health care. Experts in Medicaid spending also acknowledge the program’s operational efficiencies, achieved by states through the aggressive use of managed care and strict controls on spending for long-term care. Much of the health care that Medicaid beneficiaries receive is furnished through safety-net providers such as community health centers, which are highly efficient and accustomed to operating on tight budgets with only limited access to costly specialty care. Furthermore, Medicaid’s physician payments are substantially lower than those from commercial insurers and Medicare — a disparity that unfortunately limits provider participation even as it helps to keep per capita spending low. Indeed, the CBO has found that insuring the poor through Medicaid will cost 50% less per capita than doing so through tax-subsidized private insurance plans offered through state health insurance exchanges.

nejmp1306051_f1 Projected Growth in Medicare Per Capita Spending, the Consumer Price Index (CPI), and the Medical CPI, 2011–2015

The essential task is to thread the needle by accelerating efficiency reforms in health care payment and organization that, in turn, can generate savings over time while not damaging Medicaid’s role as a pillar of health care reform. Of particular importance is a heightened focus, begun under the ACA, on reforms that emphasize community care for millions of severely disabled children and adults, including patients who are dually enrolled in Medicare and Medicaid and who rely heavily on long-term institutional care.

The Shortfalls of ‘Obamacare’

Wilensky G.R. N Engl J Med 2012; 367:1479-1481 http://dx.doi.org/10.1056/NEJMp1210763

U.S. health care suffers from three major problems: millions of people go without insurance, health care costs are rising at unaffordable rates, and the quality of care is not what it should be. The Affordable Care Act (ACA) primarily addresses the first — and easiest — of these problems by expanding coverage to a substantial number of the uninsured. Solutions to the other two remain aspirations. The ACA’s primary accomplishment is that approximately 30 million previously uninsured people may end up with coverage — about half with subsidized private coverage purchased in the mostly yet-to-be-formed state insurance exchanges and the other half through Medicaid expansions. The law’s most controversial provision remains the individual mandate, which requires people either to have insurance coverage or to pay a penalty. The penalty for not having insurance is very small, particularly for younger people with modest incomes. It would have been smarter to mimic Medicare’s policies: seniors who don’t purchase the voluntary parts of Medicare covering physician services and outpatient prescription drugs during the first year in which they lack comparable coverage must pay a penalty for every month they have gone without coverage whenever they finally do purchase it.

Despite widespread recognition that fee-for-service reimbursement rewards providers for the quantity and complexity of services and encourages fragmentation in care delivery, the ACA retains all the predominantly fee-for-service reimbursement strategies currently used in Medicare. Much of the coverage expansion is financed through Medicare budget savings, which are produced by reducing the fees paid by Medicare to institutional providers such as hospitals, home care agencies, and nursing homes — but using the same perverse reimbursement system currently in place. Reducing payments to institutional providers should not be confused with lowering the cost of providing care.

The ACA also provides Medicare “productivity adjustments,” which assume that inflation adjustments can be reduced over time because institutions will become more productive, whether or not hospitals and other providers actually find ways to increase their productivity. Unless these institutions find ways to reduce costs, lower Medicare reimbursements will force providers to bargain for higher payments from private insurers. And eventually, seniors’ access to services will be threatened. The Medicare actuary expects that 15% of institutional providers will lose money on their Medicare business by 2019, and the proportion will increase to 25% by 2030 — a situation that he calls unsustainable

Most troubling, the ACA contains no reform of the way physicians are paid, which is the most dysfunctional part of the Medicare program. Through the Resource-Based Relative Value Scale, physicians are reimbursed on the basis of service codes, and payment for each physician service is reduced whenever aggregate spending on physician services exceeds a prespecified limit. This system disregards whether clinicians are providing low-cost, high-value care for patients. Given physicians’ key role in providing patient care, it’s impossible to imagine a reformed delivery system without one that rewards them for providing clinically appropriate care efficiently.

What is needed are reforms that create clear financial incentives that promote value over volume, with active engagement by both consumers and the health care sector. Market-friendly reforms require empowering individuals, armed with good information and nondistorting subsidies, to choose the type of Medicare delivery system they want. Being market-friendly means allowing seniors to buy more expensive plans if they wish, by paying the extra cost out of pocket, or to buy coverage in health plans with more tightly structured delivery systems at lower prices if that’s what suits them. 

Financing Graduate Medical Education — Mounting Pressure for Reform

John K. Iglehart N Engl J Med 2012; 366:1562-1563 http:dx.doi.org/10.1056/NEJMp1114236
http://www.nejm.org/doi/full/10.1056/NEJMp1114236

Disparate voices from the White House, a national fiscal commission, Congress, a Medicare advisory body, private foundations, and academic medical leaders are advocating changes to Medicare’s investment in graduate medical education (GME), which currently totals $9.5 billion annually. They offer various prescriptions, including reducing federal support, developing new achievement measures for which GME programs should be held accountable, and seeking independent assessment of the governance and financing of training programs.

The influential GME community has withstood most past efforts to change Medicare’s GME policies. But recognizing today’s more challenging political environment, the Association of American Medical Colleges (AAMC) has begun discussing alternative methods of financing GME that could better align training with the future health care delivery system and address U.S. workforce needs. The association is also examining the influence of student debt on the enrollment of a diverse student body.

When Congress enacted Medicare in 1965, it assigned to the program functions that reached well beyond its mission of financing health care for the elderly. One function was supporting GME, at least until the society at large undertook “to bear such education costs in some other way.” Almost 50 years later, Medicare remains the largest supporter of GME, providing both direct payments to hospitals that cover medical education expenses related to the care of Medicare patients (about $3 billion per year) and an indirect medical education (IME) adjustment to teaching hospitals for the added patient-care costs associated with training (about $6.5 billion).

In its 2013 budget, unveiled on February 13, 2012, the Obama administration proposed reducing Medicare’s IME adjustment by $9.7 billion over 10 years, beginning in 2014, citing a report from the Medicare Payment Advisory Commission (MedPAC) indicating that Medicare’s IME adjustments “significantly exceed the actual added patient care costs these hospitals incur.” The administration also proposed that the secretary of health and human services be granted the authority to assess GME programs’ performance in instilling in residents the necessary skills to promote high-quality health care. Similarly, MedPAC had recommended redirecting about half the IME adjustments ($3.5 billion) into “incentive payments” that GME programs could earn by meeting performance standards. The Obama budget would also eliminate coverage of the IME expenses of free-standing children’s hospitals with pediatric residency programs — which do not treat Medicare patients — reducing their federal support by 66% (to $88 million). Moreover, Congress has revealed its uncertainty over how to change federal workforce policy. In the Affordable Care Act (ACA), Congress emphasized the importance of expanding the primary care workforce. But legislators rejected the AAMC’s call to expand the number of Medicare-funded GME positions by 15% in response to reported physician shortages in some specialties.

On December 21, seven senators — Democrats Michael Bennet (CO), Jeff Bingaman (NM), Mark Udall (CO), and Tom Udall (NM) and Republicans Mike Crapo (ID), Chuck Grassley (IA), and Jon Kyl (AZ) — sent a letter to the Institute of Medicine (IOM) encouraging it to “conduct an independent review of the governance and financing of our system of [GME].” They urged the IOM to explore subjects including accreditation; reimbursement policy; the use of GME to better predict and ensure adequate workforce supply in terms of type of provider, specialty, and demographic mix; GME’s role in care of the underserved; and use of GME to ensure the creation of a workforce with the skills necessary for addressing future health care needs. The senators emphasized their interest “in IOM’s observations about the uneven distribution of GME funding across states based on need and capacity, and how to address this inequity.” In an interview, Bingaman said he initiated the letter for the same reasons he had championed creation of a National Health Care Workforce Commission as part of the ACA: to strengthen the government’s resolve to do “a more credible job of assessing workforce shortages” and because he believes Medicare’s GME policies are “outmoded.”

The priorities cited in the IOM letter parallel some of the recommendations of a group of academic medical leaders who gathered at two conferences underwritten by the Josiah Macy Jr. Foundation. At the first conference, in October 2010, the top recommendation was that “an independent external review of the goals, governance, and financing of the GME system should be undertaken by the Institute of Medicine, or a similar body.”3 George Thibault, president of the Macy Foundation, says the group concluded that “because GME is a public good and is significantly financed with public dollars, the GME system must be accountable to the needs of the public.” Acknowledging that some people in academic medicine “favor a behind-the-scenes discussion of GME reform alternatives,” Thibault noted, “I believe we should be upfront, providing examples of change that could influence the thinking of policymakers.” The foundation awarded the IOM $750,000 — about half the support it needs for the GME study.

Among subjects under discussion are the collection of more data highlighting the importance of the safety-net functions and unique services of academic medical centers and the creation of a long-term vision for GME financing that is more closely aligned with emerging care delivery models, such as accountable care organizations. The association is also revisiting a potential financial model under which all health care payers would explicitly cover GME expenses. Private insurers maintain that they accomplish this implicitly by paying teaching hospitals more for clinical services than they pay most other hospitals. GME leaders think one possibility would be to include the costs of residency training when calculating premium amounts for products sold through health insurance exchanges. Similarly, a recent Carnegie Foundation report asserted that “GME redesign demands . . . a more broad-based, less politicized flow of funds.”

Dr. Darrell Kirch noted, CEO of AAMC, “A significant step forward is the announcement by the ACGME [Accreditation Council for Graduate Medical Education] describing major changes in how the nation’s residency programs will be accredited in the future, putting in place an outcomes-based evaluation system by which new physicians will be measured for their competency in performing the essential tasks necessary for clinical practice in the 21st century.”

Achieving Health Care Reform — How Physicians Can Help

Elliott S. Fisher, M.D., M.P.H., Donald M. Berwick, M.D., M.P.P., and Karen Davis, Ph.D.
N Engl J Med 2009; 360:2495-2497 http://dx.doi.org/10.1056/NEJMp0903923
http://www.nejm.org/doi/full/10.1056/NEJMp0903923

The recent commitment by several major stakeholders — including the American Medical Association — to slowing the growth of health care spending is a promising development. But the controversy about whether the organizations actually agreed to a 1.5-percentage-point reduction in annual spending growth is just one indication that success is still far from assured.

Two threats in particular put reform at risk: conflicting doctrines (regarding the creation of a new public insurance option and government support for comparative-effectiveness studies) and opposition to change among some current stakeholders. In the face of this uncertainty, physicians have a choice: to wait and see what happens or to lead the change our country needs. We’d prefer the latter.

The first level is aims. For health care reform, we propose that physicians, through their advocacy, help lead the country to embrace the so-called triple aim: better experience of care (safe, effective, patient-centered, timely, efficient, and equitable), better health for the population, and lower total per capita costs.

The second level is the design of the care processes that affect the patient — clinical “microsystems.” Health care microsystems are famously unreliable, variable in costs, and often unsafe. Physicians, through their participation in quality-improvement initiatives in their practices and hospitals, can and should lead the needed changes in the systems of care in which they work, to make them safer, more reliable, more patient-centered, and more affordable.

However, neither physicians nor anyone else on the front lines can improve care much on their own. Their most important source of support for improvement is the third level described by the IOM — the health care organizations that house almost all clinical microsystems and can ensure coordination among them. We need organizations large enough to be accountable for the full continuum of patients’ care as well as for achieving the triple aim. We will create a high-performing health care system only if integrated delivery systems become the mainstay of organizational design. Organizations could be virtually integrated, such as networks of independent physicians sharing electronic health records and administrative and clinical support for care management and quality improvement, or structurally integrated, such as multispecialty group practices or staff-model health maintenance organizations. Fostering the development of such accountable care organizations need not be disruptive to patients or providers: almost all physicians already work within natural referral networks that provide the vast majority of care to patients seen by the primary care physicians within the network.

Innovators-Prescription-New-Wave-of-Disruptive-Models-in-Healthcare

The IOM’s fourth level is the environment, which includes the payment, regulatory, legal, and educational systems. On this front, too, we need physician advocacy. The United States cannot achieve the triple aim without health insurance for everyone. Integrated delivery systems that are accountable for populations won’t thrive unless payment systems encourage their development and unless we change the laws and regulations — including proscriptions of gainsharing and anti-kickback rules — that prevent cooperation among health care professionals and organizations.

If stakeholders can agree on such a vision of health care reform, perhaps we could shift our focus from the conflict over whether a new public plan should be created to a more constructive insistence that all health plans, whether public or private, focus on the development of professionally led, integrated systems.

If health care providers and suppliers could actually achieve this reduction in growth rates, the federal government would harvest about $1.1 trillion in savings over the 11-year period — enough, perhaps, to close the deal on affordable health insurance for all. Others would also see savings: $497 billion for employers, $529 billion for state and local governments, and $671 billion for households. One simple way for physicians to start contributing to this goal is by reassessing and scaling back, where appropriate, their use of clinical practices now listed as “overused” by the National Quality Forum’s National Priorities Partnership.

Editor-in-Chief Eric J. Topol, MD, interviews Secretary of Health and Human Services (HHS) Kathleen Sebelius

Medscape

Editor’s Note: On the eve of the first anniversary of the Supreme Court’s ruling to uphold most provisions of the Affordable Care Act (ACA), Medscape Editor-in-Chief Eric J. Topol, MD, questioned Secretary of Health and Human Services (HHS) Kathleen Sebelius about the act’s effect on medical technology, clinical trial participation, genetic testing, primary care, and patient safety.

Introduction

Dr. Topol: We are experiencing a digital revolution in which technological advances are putting healthcare where it should be: in the hands of patients. How is the ACA helping to foster medical innovation?
Secretary Sebelius: A recent New York Times column, “Obamacare’s Other Surprise,”[1] by Thomas L. Friedman, echoes what we’ve been hearing from healthcare providers and innovators: Data that support medical decision-making and collaboration, dovetailing with new tools in the Affordable Care Act, are spurring the innovation necessary to deliver improved healthcare for more people at affordable prices.
Today we are focused on driving a smarter healthcare system with an emphasis on the quality — not quantity — of care. The healthcare law includes many tools to increase transparency, avoid costly mistakes and hospital readmissions, keep patients healthy, and test new payment and care delivery models, like Accountable Care Organizations (ACOs). Health information technology is a critical underpinning to this larger strategy.
In May we reached an important milestone in the adoption of health information technology. More than half of all doctors and other eligible providers, and nearly 80% of hospitals, are using electronic health records (EHRs) to improve care, an increase of at least 200% since 2008. Also in May, we announced a $1 billion challenge to help jump-start innovative projects that test creative ways to deliver high-quality medical care and lower costs to people enrolled in Medicare and Medicaid, following 81 Health Care Innovation Awards that HHS awarded last year.
Dr. Topol: Physicians have long lamented the lack of participation by patients in clinical trials, but the ACA is opening the door for greater participation by allowing patients to keep their health insurance while participating in clinical research. Are patients even aware that this provision now exists? How do you see it affecting clinical trial participation in the future?
Secretary Sebelius: In 2014, thanks to the ACA, insurance companies will no longer be able to deny patients from participating in an approved clinical trial for treatment of cancer or another life-threatening disease or condition, nor can they deny or limit the coverage of routine patient costs for items or services in connection with trial participation. For many patients, access to cutting-edge medicine available through clinical trials can increase their likelihood of survival. This is an important protection for patients that not only could have a life-altering impact, but it’s also one that serves to facilitate participation in research that is critical to expanding our knowledge base and finding cures and treatments for those illnesses that threaten the lives of Americans each day.
Dr. Topol: One of the intentions of the ACA is to increase the primary care workforce. This is critical as we approach 2014, when more Americans than ever will have either private insurance or Medicaid. Have you seen any movement in the primary care workforce? Are there concerns that there aren’t enough clinicians available to meet the forthcoming patient load?
Secretary Sebelius: Primary care providers are critical to ensuring better coordinated care and better health outcomes for all Americans. To meet the health needs of Americans, the Obama Administration has made the recruitment, training, and retention of primary care professionals a top priority.
Together, the ACA, the American Recovery and Reinvestment Act of 2009, and ongoing federal investments in the healthcare workforce have led to significant progress in training new primary care providers — such as physicians, nurse practitioners, and physician assistants — and encouraging primary care providers to practice in underserved areas, including:
Nearly tripling the National Health Service Corps;
Increasing the number of medical residents, nurse practitioners, and physician assistants trained in primary care, including placing over 1500 new primary care providers in underserved areas;
Creating primary care payment incentives for providers; and Redistributing unused residency positions and directing those slots for the training of primary care physicians.
Additionally, the ACA is modernizing the primary care training infrastructure, creating new primary care clinical training opportunities, supporting primary care practice, and improving payment and financial incentives for coordinated care.
Improving Hospital Safety
Dr. Topol: George Orwell once said that the hospital is the antechamber to the tomb. That was written decades ago, and unfortunately there’s still truth to that today. One in 4 hospital patients in America have a problem with medical mistakes, contract hospital-acquired infections, and experience medication errors. The ACA last year began linking Medicare payments to quality of patient care, offering financial incentives to hospitals that improve patient care. How is this working? Have there been any meaningful care improvements over the past year?
Secretary Sebelius: The ACA includes steps to improve the quality of healthcare and, in so doing, lowers costs for taxpayers and patients. This means avoiding costly mistakes and readmissions, keeping patients healthy, rewarding quality instead of quantity, and creating the health information technology infrastructure that enables new payment and delivery models to work. These reforms and investments will build a healthcare system that will ensure quality care for generations to come.
Already we have made significant progress:
Healthcare Spending Is Slowing
Secretary Sebelius: Medicare spending per beneficiary grew just 0.4% per capita in fiscal year 2012, continuing the pattern of very low growth in 2010 and 2011. Medicaid spending per beneficiary also decreased 0.9% in 2011, compared with 0.6% growth in 2010. Average annual increases in family premiums for employer-sponsored insurance were 6.2% from 2004 to 2008, 5.6% from 2009 to 2012, and 4.5% in 2012 alone.
Health Outcomes Are Improving and Adverse Events Are Decreasing
Secretary Sebelius: Several programs tie Medicare reimbursement for hospitals to their readmission rates, when patients have to come back into the hospital within 30 days of being discharged. Additionally, as part of a new ACA initiative, clinicians at some hospitals have reduced their early elective deliveries to close to zero, meaning fewer at-risk newborns and fewer admissions to the NICU.
Providers Are Engaged
Secretary Sebelius: In 2012, we debuted the Medicare Shared Savings Program and the Pioneer Accountable Care Organization Model. These programs encourage providers to invest in redesigning care for higher-quality and more efficient service delivery, without restricting patients’ freedom to go to the Medicare provider of their choice.
Over 250 organizations are participating in Medicare ACOs, serving approximately 4 million, or 8%, of Medicare beneficiaries. As existing ACOs choose to add providers and as more organizations join the program, participation in ACOs is expected to grow. ACOs are estimated to save up to $940 million in the first 4 years.
Bundle with Care ‹ Rethinking Medicare Incentives for Post­Acute Care Services

Feder J. N Engl J Med 2013; 369:400-401

A Medicare payment approach in which savings and risk are shared may achieve a better balance of cost, quality, and access than a system of single bundled payments, at least until our capacity to measure patients’ care needs and outcomes is sufficiently robust.

Healthcare Reform 2014: Mandated Coverage, Insurance Exchanges, and Employer Requirements

3 of 5 in Series: The Essentials of Healthcare Reform
http://www.dummies.com/how-to/content/healthcare-reform-2014-mandated-coverage-insurance.html

The Affordable Care Act federal and state officials are working with leaders in the health and insurance industries to restructure our nation’s healthcare system. That restructuring means most Americans will be required to have health insurance and most businesses will be required to offer it to their employees. It also means the creation of another kind of insurance plan called a health insurance exchange.

The government will require most Americans to have health insurance by 2014. The government has enacted this provision as a way to get healthy people who don’t feel the need to pay for coverage to buy insurance. That way, the healthy people can help fund the cost of people who require more medical care.

Several states filed, and lost, a suit against the federal government saying that it is unconstitutional to make individual citizens to buy health insurance.

If you don’t have coverage and you’re not in one of the groups that is an exception to the rule, you’ll pay a penalty. You may not be required to purchase health insurance if you

  • Face financial hardships.
  • Have been uninsured for less than three months.
  • Have religious objections.
  • Are American Indian.
  • Are a prison inmate.
  • Are an undocumented immigrant.

If you’re penalized, the amount you’ll be fined will go up each year for the first three years. In 2014, you’ll pay $95 or 1 percent of your taxable income, whichever is greater. In 2015, the fine will be $325 or 2 percent of taxable income, and in 2016 the penalty will be $695 or 2.5 percent of income. Each year after 2016, the government will refigure the fine based on a cost-of-living adjustment.

To help you meet the cost of mandated insurance, the government will offer premium credits and cost sharing subsidies if you and your family meet certain income guidelines and if you enroll in one of the new state-run insurance exchanges.

If your income falls between 133 and 400 percent of the federal poverty level (FPL), you could receive premium credits that will lower the maximum amount of premium you have to pay for your coverage.

  • There will be a catastrophic plan for people under 30 and for those who are exempt from mandated coverage.

States don’t have to set up the exchanges. If a state chooses not to, the federal government can come in and create them. States that do opt for exchanges will decide whether they’ll be run by a government or not-for-profit entity.

Health Care Reform — Why So Much Talk and So Little Action?

Victor R. Fuchs, Ph.D
N Engl J Med 2009; 360:208-209 http://dx.doi.org/10.1056/NEJMp0809733
http://www.nejm.org/doi/full/10.1056/NEJMp0809733

First, many organizations and individuals prefer the status quo. This category includes health insurance companies; manufacturers of drugs, medical devices, and medical equipment; companies that employ mostly young, healthy workers and therefore have lower health care costs than they would if required to help subsidize care for the poor and the sick; high-income employees, whose health insurance is heavily subsidized through a tax exemption for the portion of their compensation spent on health insurance; business leaders and others who are ideologically opposed to a larger role of government; highly paid physicians in some surgical and medical specialties; and workers who mistakenly believe that their employment-based insurance is a gift from their employer rather than an offset to their potential take-home pay.

Second, as Niccoló Machiavelli presciently wrote in 1513, “There is nothing more difficult to manage, more dubious to accomplish, nor more doubtful of success . . . than to initiate a new order of things. The reformer has enemies in all those who profit from the old order and only lukewarm defenders in all those who would profit from the new order.”

Third, our country’s political system renders Machiavelli’s Law of Reform particularly relevant in the United States, where many potential “choke points” offer opportunities to stifle change. The problem starts in the primary elections in so-called safe congressional districts, where special-interest money can exert a great deal of influence because of low voter turnout. The fact that Congress has two houses increases the difficulty of passing complex legislation, especially when several committees may claim jurisdiction over portions of a bill. Also, a supermajority of 60% may be needed to force a vote in the filibuster-prone Senate.

Fourth, reformers have failed to unite behind a single approach. Disagreement among reformers has been a major obstacle to substantial reform since early in the last century. According to historian Daniel Hirshfield, “Some saw health insurance primarily as an educational and public health measure, while others argued that it was an economic device to precipitate a needed reorganization of medical practice. . . . Some saw it as a device to save money for all concerned, while others felt sure that it would increase expenditures significantly.” These differences in objectives persist to this day.

Health insurers are opening stores alongside department stores, other typical mall tenants.

Jayne O’Donnell , USA TODAY
 http://www.usatoday.com/story/news/nation/2013/09/12/health-insurance-sales-retail-stores-malls/2789897/

,The new health law known as the Affordable Care Act means most uninsured Americans are required to have insurance beginning March 31 or pay a penalty at tax time in 2015.

Insurers need to sign up as many healthy, younger people as they can to pay for all of the older, sick customers they will be taking on. The law prohibits insurers from denying people insurance because of pre-existing health problems and limits how much more they can charge older than younger people.

So, for the first time, insurers are fiercely competing to attract individual consumers and turning to traditional retail marketing techniques to do so, luring them into stores with special events and using splashy advertising. As any retailer knows, they have the greatest chance of converting shoppers to customers once they have them in their retail locations or on their sites.

The Medical Breakthrough Nobody’s Talking About

Toby CosgroveCEO and President at Cleveland Clinic

http://www.linkedin.com/today/post/article/20130912184535-205372152-the-medical-breakthrough-nobody-s-talking-about

The latest medical breakthrough hasn’t gotten much press, but it’s changing medicine even as we speak. It’s the dawning realization that healthcare is not about how many patients you can see, how many tests and procedures you can order, or how much you can charge for these things. The breakthrough is the understanding that healthcare is a value proposition, which means getting patients the right care, at the right time, in the right place. It’s a matter of focusing on outcomes and cost, so that more Americans will start getting what they pay for in healthcare dollars.

Value-based care focuses on two targets: outcomes and cost. Until recently, providers pursued these goals separately, with doctors concentrating on outcomes and the administrators trying to control costs. Value-based care does something different. It works to bring these targets into alignment. The caregivers in a value-based provider work with cost-experts as a team to simultaneously improve outcomes and lower expenses.

Doctors, hospitals and payers are partners in the move to value-based care. The Affordable Care Act includes incentives for providers to improve outcomes and lower costs. But this is one breakthrough that will take time for implementation nationwide. Providers who make the transition early will be rewarded with more satisfied patients, lower expenses and pride in a job well done.

Six-Month Enforcement Delay After Guidance

According to AAMC, the language in the final rule requires that the order to admit a patient be written by a practitioner “who has admitting privileges at the hospital,” something that few residents have as they are not considered members of the hospital’s medical staff.

AAMC said it brought the issue to CMS’s attention during an Open Door Forum call Aug. 15. The agency acknowledged it did not intend to prohibit residents from admitting patients, and said it would be issuing a Q&A. However, AAMC said until the issue can be resolved “to the satisfaction of the teaching hospital community,” CMS should make clear to all contractors that no inpatient admission should be denied because it was ordered by a resident while under the supervision of an attending physician.

AAMC said CMS should delay enforcing the new requirements for at least six months following the release of the guidance so hospitals will have sufficient time to understand the rules, educate physicians and others, and ensure that they have put in place the mechanisms that are needed to comply with the new requirements.

“As short inpatient stays have been a focus of audits by [Recovery Audit Contractors], hospitals feel especially at risk for failure to properly implement CMS requirements,” AAMC said.

The letter is available at http://op.bna.com/hl.nsf/r?Open=nwel-9auqls.

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Heart, Vascular Smooth Muscle, Excitation-Contraction Coupling (E-CC), Cytoskeleton, Cellular Dynamics and Ca2 Signaling

Heart, Vascular Smooth Muscle, Excitation-Contraction Coupling (E-CC), Cytoskeleton, Cellular Dynamics and Ca2 Signaling

Author and Curator: Larry H Bernstein, MD, FCAP

Author and Cardiovascular Three-volume Series, Editor: Justin Pearlman, MD, PhD, FACC, and

Curator: Aviva Lev-Ari, PhD, RN

Article V Heart, Vascular Smooth Muscle, Excitation-Contraction Coupling (E-CC), Cytoskeleton, Cellular Dynamics and Ca2 Signaling

Image created by Adina Hazan 06/30/2021

Abbreviations

AP, action potential; ARVD2, arrhythmogenic right ventricular cardiomyopathy type 2; CaMKII, Ca2+/calmodulim-dependent protein kinase II; CICR, Ca2+ induced Ca2+ release;CM, calmodulin; CPVT, catecholaminergic polymorphic ventricular tachycardia;  ECC, excitation–contraction coupling; FKBP12/12.6, FK506 binding protein; HF, heart failure; LCC, L-type Ca2+ channel;  P-1 or P-2, phosphatase inhibitor type-1 or type-2; PKA, protein kinase A; PLB, phosphoplamban; PP1, protein phosphatase 1; PP2A, protein phosphatase 2A; RyR1/2, ryanodine receptor type-1/type-2; SCD, sudden cardiac death; SERCA, sarcoplasmic reticulum Ca2+ ATPase; SL, sarcolemma; SR, sarcoplasmic reticulum.

This is Part V of a series on the cytoskeleton and structural shared thematics in cellular movement and cellular dynamics.

The Series consists of the following articles:

Part I: Identification of Biomarkers that are Related to the Actin Cytoskeleton

Larry H Bernstein, MD, FCAP

http://pharmaceuticalintelligence.com/2012/12/10/identification-of-biomarkers-that-are-related-to-the-actin-cytoskeleton/

Part II: Role of Calcium, the Actin Skeleton, and Lipid Structures in Signaling and Cell Motility

Larry H. Bernstein, MD, FCAP, Stephen Williams, PhD and Aviva Lev-Ari, PhD, RN

http://pharmaceuticalintelligence.com/2013/08/26/role-of-calcium-the-actin-skeleton-and-lipid-structures-in-signaling-and-cell-motility/

Part III: Renal Distal Tubular Ca2+ Exchange Mechanism in Health and Disease

Larry H. Bernstein, MD, FCAP, Stephen J. Williams, PhD
 and Aviva Lev-Ari, PhD, RN

http://pharmaceuticalintelligence.com/2013/09/02/renal-distal-tubular-ca2-exchange-mechanism-in-health-and-disease/

Part IV: The Centrality of Ca(2+) Signaling and Cytoskeleton Involving Calmodulin Kinases and Ryanodine Receptors in Cardiac Failure, Arterial Smooth Muscle, Post-ischemic Arrhythmia, Similarities and Differences, and Pharmaceutical Targets

 

Larry H Bernstein, MD, FCAP, Justin Pearlman, MD, PhD, FACC and Aviva Lev-Ari, PhD, RN

http://pharmaceuticalintelligence.com/2013/09/08/the-centrality-of-ca2-signaling-and-cytoskeleton-involving-calmodulin-kinases-and-ryanodine-receptors-in-cardiac-failure-arterial-smooth-muscle-post-ischemic-arrhythmia-similarities-and-differen/

Part V: Heart, Vascular Smooth Muscle, Excitation-Contraction Coupling (E-CC), Cytoskeleton, Cellular Dynamics and Ca2 Signaling

Larry H Bernstein, MD, FCAP, Justin Pearlman, MD, PhD, FACC and Aviva Lev-Ari, PhD, RN

http://pharmaceuticalintelligence.com/2013/08/26/heart-smooth-muscle-excitation-contraction-coupling-cytoskeleton-cellular-dynamics-and-ca2-signaling/

Part VI: Calcium Cycling (ATPase Pump) in Cardiac Gene Therapy: Inhalable Gene Therapy for Pulmonary Arterial Hypertension and Percutaneous Intra-coronary Artery Infusion for Heart Failure: Contributions by Roger J. Hajjar, MD

Aviva Lev-Ari, PhD, RN

http://pharmaceuticalintelligence.com/2013/08/01/calcium-molecule-in-cardiac-gene-therapy-inhalable-gene-therapy-for-pulmonary-arterial-hypertension-and-percutaneous-intra-coronary-artery-infusion-for-heart-failure-contributions-by-roger-j-hajjar/

Part VII: Cardiac Contractility & Myocardium Performance: Ventricular Arrhythmias and Non-ischemic Heart Failure – Therapeutic Implications for Cardiomyocyte Ryanopathy (Calcium Release-related Contractile Dysfunction) and Catecholamine Responses

Justin Pearlman, MD, PhD, FACC, Larry H Bernstein, MD, FCAP and Aviva Lev-Ari, PhD, RN

http://pharmaceuticalintelligence.com/2013/08/28/cardiac-contractility-myocardium-performance-ventricular-arrhythmias-and-non-ischemic-heart-failure-therapeutic-implications-for-cardiomyocyte-ryanopathy-calcium-release-related-contractile/

In the first part, we discussed common MOTIFs across cell-types that are essential for cell division, embryogenesis, cancer metastasis, osteogenesis, musculoskeletal function, vascular compliance, and cardiac contractility.   This second article concentrates on specific functionalities for cardiac contractility based on Ca++ signaling in excitation-contraction coupling.  The modifications discussed apply specifically to cardiac muscle and not to skeletal muscle.  Considering the observations described might raise additional questions specifically address to the unique requirements of smooth muscle, abundant in the GI tract and responsible for motility in organ function, and in blood vessel compliance or rigidity. Due to the distinctly different aspects of the cardiac contractility and contraction force, and the interactions with potential pharmaceutical targets, there are two separate articles on calcium signaling and cardiac arrhythmias or heart failure (Part 2 and Part 3).  Part 2 focuses on the RYANODINE role in cardiac Ca(2+) signaling and its effect in heart failure.  Part 3 takes up other aspects of heart failure and calcium signaling with respect to phosporylation/dephosphorylation. I add a single review and classification of genetic cardiac disorders of the same cardiac Ca(2+) signaling and the initiation and force of contraction. Keep in mind that the heart is a syncytium, and this makes a huge difference compared with skeletal muscle dynamics. In Part 1 there was some discussion of the importance of Ca2+ signaling on innate immune system, and the immunology will be further expanded in a fourth of the series.

SUMMARY:

This second article on the cardiomyocyte and the Ca(2+) cycling between the sarcomere and the cytoplasm, takes a little distance from the discussion of the ryanodine that precedes it.  In this discussion we found that there is a critical phosphorylation/dephosphorylation balance that exists between Ca(+) ion displacement and it occurs at a specific amino acid residue on the CaMKIId, specific for myocardium, and there is a 4-fold increase in contraction and calcium release associated with this CAM kinase (ser 2809) dependent exchange.  These events are discussed in depth, and the research holds promise for therapeutic application. We also learn that Ca(2+) ion channels are critically involved in the generation of arrhythmia as well as dilated and hypertrophic cardiomyopathy.  In the case of arrhythmiagenesis, there are two possible manners by which this occurs.  One trigger is Ca(2+) efflux instability.  The other is based on the finding that when the cellular instability is voltage driven, the steady-state wave­length (separation of nodes in space) depends on electrotonic coupling between cells and the steepness of APD and CV restitution. The last article is an in depth review of the genetic mutations that occur in cardiac diseases.  It is an attempt at classifying them into reasonable groupings. What are the therapeutic implications of this? We see that the molecular mechanism of cardiac function has been substantially elucidated, although there are contradictions in experimental findings that are unexplained.  However, for the first time, it appears that personalized medicine is on a course that will improve health in the population, and the findings will allow specific targets designed for the individual with a treatable impairment in cardiac function that is identifiable early in the course of illness. This article is a continuation to the following articles on tightly related topics: Part I: Identification of Biomarkers that are Related to the Actin Cytoskeleton     Larry H Bernstein, MD, FCAP http://pharmaceuticalintelligence.com/2012/12/10/identification-of-biomarkers-that-are-related-to-the-actin-cytoskeleton/ Part II:  Role of Calcium, the Actin Skeleton, and Lipid Structures in Signaling and Cell Motility    Larry H. Bernstein, MD, FCAP, Stephen Williams, PhD and Aviva Lev-Ari, PhD, RN  http://pharmaceuticalintelligence.com/2013/08/26/role-of-calcium-the-actin-skeleton-and-lipid-structures-in-signaling-and-cell-motility/ Part III: Renal Distal Tubular Ca2+ Exchange Mechanism in Health and Disease    Larry H. Bernstein, MD, FCAP, Stephen J. Williams, PhD
 and  Aviva Lev-Ari, PhD, RN http://pharmaceuticalintelligence.com/2013/09/02/renal-distal-tubular-ca2-exchange-mechanism-in-health-and-disease/ Part  IV:  The Centrality of Ca(2+) Signaling and Cytoskeleton Involving Calmodulin Kinases and Ryanodine Receptors in Cardiac Failure, Arterial Smooth Muscle, Post-ischemic Arrhythmia, Similarities and Differences, and Pharmaceutical Targets Larry H Bernstein, MD, FCAP, Justin Pearlman, MD, PhD, FACC and Aviva Lev-Ari, PhD, RN  http:/pharmaceuticalintelligence.com/2013.09.089/lhbern/The Centrality of Ca(2+) Signaling and Cytoskeleton Involving Calmodulin Kinases and Ryanodine Receptors in Cardiac Failure, Arterial Smooth Muscle, Post-ischemic Arrhythmia, Similarities and Differences, and Pharmaceutical Targets

Part V:  Heart Smooth Muscle and Cardiomyocyte Cells: Excitation-Contraction Coupling & Ryanodine Receptor (RyR) type-1/type-2 in Cytoskeleton Cellular Dynamics and Ca2+ Signaling

Larry H Bernstein, MD, FCAP, Justin Pearlman, MD, PhD, FACC and Aviva Lev-Ari, PhD, RN http://pharmaceuticalintelligence.com/2013/08/26/heart-smooth-muscle-excitation-contraction-coupling-cytoskeleton-cellular-dynamics-and-ca2-signaling/ Part VI:  Calcium Cycling (ATPase Pump) in Cardiac Gene Therapy: Inhalable Gene Therapy for Pulmonary Arterial Hypertension and Percutaneous Intra-coronary Artery Infusion for Heart Failure: Contributions by Roger J. Hajjar, MD Curator: Aviva Lev-Ari, PhD, RN http://pharmaceuticalintelligence.com/2013/08/01/calcium-molecule-in-cardiac-gene-therapy-inhalable-gene-therapy-for-pulmonary-arterial-hypertension-and-percutaneous-intra-coronary-artery-infusion-for-heart-failure-contributions-by-roger-j-hajjar/ and Advanced Topics in Sepsis and the Cardiovascular System at its End Stage Larry H Bernstein, MD, FCAP  http://pharmaceuticalintelligence.com/2013/08/18/advanced-topics-in-sepsis-and-the-cardiovascular-system-at-its-end-stage/

The Role of Protein Kinases and Protein Phosphatases in the Regulation of Cardiac Sarcoplasmic Reticulum Function

EG Kranias, RC Gupta, G Jakab, HW Kim, NAE Steenaart, ST Rapundalo Molecular and Cellular Biochemistry 06/1988; 82(1):37-44. · 2.06 Impact Factor http://www.researchgate.net/publication/6420466_Protein_phosphatases_decrease_sarcoplasmic_reticulum_calcium_content_by_stimulating_calcium_release_in_cardiac_myocytes Canine cardiac sarcoplasmic reticulum is phosphorylated by

  • adenosine 3,5-monophosphate (cAMP)-dependent and
  • calcium calmodulin-dependent protein kinases on
  • a proteolipid, called phospholamban.

Both types of phosphorylation are associated with

  •  an increase in the initial rates of Ca(2+) transport by SR vesicles
  • which reflects an increased turnover of elementary steps of the calcium ATPase reaction sequence.

The stimulatory effects of the protein kinases on the calcium pump may be reversed by an endogenous protein phosphatase, which

  • can dephosphorylate both the CAMP-dependent and the calcium calmodulin-dependent sites on phospholamban.

Thus, the calcium pump in cardiac sarcoplasmic reticulum appears to be under reversible regulation mediated by protein kinases and protein phosphatases. calcium release calmodulin + ER Ca(2+) and contraction

Regulation of the Cardiac Ryanodine Receptor Channel by Luminal Ca2+ involves Luminal Ca2+ Sensing Sites

I Györke, S Györke.   Biophysical Journal 01/1999; 75(6):2801-10. · 3.65 Impact factor  http:// www.researchgate.net/publication/13459335/Regulation_of_the_cardiac_ryanodine_receptor_channel_by_luminal_Ca2_involves_luminal_Ca2_sensing_sites The mechanism of activation of the cardiac calcium release channel/ryanodine receptor (RyR) by luminal Ca(2+) was investigated in native canine cardiac RyRs incorporated into lipid bilayers in the presence of 0.01 microM to 2 mM Ca(2+) (free) and 3 mM ATP (total) on the cytosolic (cis) side and 20 microM to 20 mM Ca(2+) on the luminal (trans) side of the channel and with Cs+ as the charge carrier. Under conditions of low [trans Ca(2+)] (20 microM), increasing [cis Ca(2+)] from 0.1 to 10 microM caused a gradual increase in channel open probability (Po). Elevating [cis Ca(2+)] [cytosolic] above 100 microM resulted in a gradual decrease in Po. Elevating trans [Ca(2+)] [luminal] enhanced channel activity (EC50 approximately 2.5 mM at 1 microM cis Ca2+) primarily by increasing the frequency of channel openings. The dependency of Po on trans [Ca2+] [luminal] was similar at negative and positive holding potentials and was not influenced by high cytosolic concentrations of the fast Ca(2+) chelator, 1,2-bis(2-aminophenoxy)ethane-N,N,N, N-tetraacetic acid. Elevated luminal Ca(2+)

  1. enhanced the sensitivity of the channel to activating cytosolic Ca(2+), and it
  2. essentially reversed the inhibition of the channel by high cytosolic Ca(2+).

Potentiation of Po by increased luminal Ca(2+) occurred irrespective of whether the electrochemical gradient for Ca(2+) supported a cytosolic-to-luminal or a luminal-to-cytosolic flow of Ca(2+) through the channel. These results rule out the possibility that under our experimental conditions, luminal Ca(2+) acts by interacting with the cytosolic activation site of the channel and suggest that the effects of luminal Ca2+ are mediated by distinct Ca(2+)-sensitive site(s) at the luminal face of the channel or associated protein. F1.large  calcium movement and RyR2 receptor

Protein phosphatases Decrease Sarcoplasmic Reticulum Calcium Content by Stimulating Calcium Release in Cardiac Myocytes

D Terentyev, S Viatchenko-Karpinski, I Gyorke, R Terentyeva and S Gyorke Texas Tech University Health Sciences Center, Lubbock, TX J Physiol 2003; 552(1), pp. 109–118.  http://dx.doi.org/10.1113/jphysiol.2003.046367 Phosphorylation/dephosphorylation of Ca2+ transport proteins by cellular kinases and phosphatases plays an important role in regulation of cardiac excitation–contraction coupling; furthermore,

  • abnormal protein kinase and phosphatase activities have been implicated in heart failure.

However, the precise mechanisms of action of these enzymes on intracellular Ca2+ handling in normal and diseased hearts remains poorly understood. We have investigated

  •   the effects of protein phosphatases PP1 and PP2A on spontaneous Ca(2+) sparks and SR Ca(2+) load in myocytes permeabilized with saponin.

Exposure of myocytes to PP1 or PP2A caused a dramatic increase in frequency of Ca(2+) sparks followed by a nearly complete disappearance of events, which were accompanied by depletion of the SR Ca(2+) stores, as determined by application of caffeine. These changes in

  •  Ca(2+) release and
  • SR Ca(2+) load

could be prevented by the inhibitors of PP1 and PP2A phosphatase activities okadaic acid and calyculin A. At the single channel level, PP1 increased the open probability of RyRs incorporated into lipid bilayers. PP1-medited RyR dephosphorylation in our permeabilized myocytes preparations was confirmed biochemically by quantitative immunoblotting using a phosphospecific anti-RyR antibody. Our results suggest that

  •  increased intracellular phosphatase activity stimulates
  • RyR mediated SR Ca(2+) release
    • leading to depleted SR Ca(2+) stores in cardiac myocytes.

In heart muscle cells, the process of excitation–contraction (EC) coupling is mediated by

  •  Ca(2+) influx through sarcolemmal L-type Ca(2+) channels
  • activating Ca(2+) release channels (ryanodine receptors, RyRs) in the sarcoplasmic reticulum (SR).

Once activated, the RyR channels allow Ca(2+) to be released from the SR into the cytosol to induce contraction. This mechanism is known as Ca(2+)-induced calcium release (CICR) (Fabiato, 1985; Bers, 2002).  During relaxation, most of the Ca(2+) is resequestered into the SR by the Ca(2+)-ATPase. The amount of Ca(2+) released and the force of contraction depend on

  •  the magnitude of the Ca(2+) trigger signal,
  • the functional state of the RyRs and
  • the amount of Ca(2+) stored in the SR.

F1.large  calcium movement and RyR2 receptor Ca(2+) and contraction calcium release calmodulin + ER Reversible phosphorylation of proteins composing the EC coupling machinery plays an important role in regulation of cardiac contractility (Bers, 2002). Thus, during stimulation of the b-adrenergic pathway, phosphorylation of several target proteins, including

  • the L-type Ca(2+) channels,
  • RyRs and
  • phospholamban,

by protein kinase A (PKA) leads to an overall increase in SR Ca2+ release and contractile force in heart cells (Callewaert et al. 1988, Spurgeon et al. 1990; Hussain & Orchard, 1997; Zhou et al. 1999; Song et al. 2001; Viatchenko-Karpinski & Gyorke, 2001). PKA-dependent phosphorylation of the L-type Ca(2+) channels increases the Ca2+ current (ICa), increasing both

  • the Ca2+ trigger for SR Ca2+ release and
  • the SR Ca(2+) content

(Callewaert et al. 1988; Hussain & Orchard, 1997; Del Principe et al. 2001). Phosphorylation of phospholamban (PLB) relieves the tonic inhibition dephosphorylated PLB exerts on the SR Ca(2+)-ATPase (SERCA) resulting in enhanced SR Ca(2+) accumulation and enlarged Ca(2+) release (Kranias et al. 1985; Simmermann & Jones, 1998). With regard to the RyR, despite clear demonstration of phosphorylation of the channel in biochemical studies (Takasago et al. 1989; Yoshida et al. 1992), the consequences of this reaction to channel function have not been clearly defined. RyR phosphorylation by PKA and Ca(2+)–calmodulin dependent protein kinase (CaMKII) has been reported to increase RyR activity in lipid bilayers (Hain et al. 1995; Marx et al. 2000; Uehara et al. 2002). Moreover, it has been reported that in heart failure (HF), hyperphosphorylation of RyR causes

  •  the release of FK-506 binding protein (FKBP12.6) from the RyR,
    • rendering the channel excessively leaky for Ca(2+) (Marx et al. 2000).

However, other studies have reported no functional effects (Li et al. 2002) or even found phosphorylation to reduce RyR channel steady-state open probability (Valdivia et al. 1995; Lokuta et al. 1995).  The action of protein kinases is opposed by dephosphorylating phosphatases. Three types of protein phosphatases (PPs), referred to as PP1, PP2A and PP2B (calcineurin), have been shown to influence cardiac performance (Neumann et al. 1993; Rusnak & Mertz, 2000). Overall, according to most studies phosphatases appear to downregulate SR Ca(2+) release and contractile performance (Neumann et al. 1993; duBell et al. 1996, 2002; Carr et al. 2002; Santana et al. 2002). Furthermore, PP1 and PP2A activities appear to be increased in heart failure (Neumann, 2002; Carr et al. 2002). However, again the precise mode of action of these enzymes on intracellular Ca(2+) handling in normal and diseased hearts remains poorly understood.  In the present study, we have investigated the effects of protein phosphatases PP1 and PP2A on local Ca(2+) release events, Ca(2+) sparks, in cardiac cells. Our results show that

  •  phosphatases activate RyR mediated SR Ca(2+) release
    • leading to depletion of SR Ca(2+) stores.

These results provide novel insights into the mechanisms and potential role of protein phosphorylation/dephosphorylation in regulation of Ca(2+) signaling in normal and diseased hearts. F2.large   RyR and calcium

RESULTS

Effects of PP1 and PP2A on Ca2+ sparks and SR Ca(2+) content.

[1]  PP1 caused an early transient potentiation of Ca2+ spark frequency followed by a delayed inhibition of event occurrence. [2]  PP1 produced similar biphasic effects on the magnitude and spatio-temporal characteristics of Ca(2+) sparks Specifically, during the potentiatory phase (1 min after addition of the enzyme), PP1 significantly increased

  • the amplitude,
  • rise-time,
  • duration and
  • width of Ca(2+) sparks;

during the inhibitory phase (5 min after addition of the enzyme),

  •  all these parameters were significantly suppressed by PP1.

The SR Ca(2+) content decreased by 35 % or 69 % following the exposure of myocytes to either 0.5 or 2Uml_1 PP1, respectively (Fig. 1C). Qualitatively similar results were obtained with phosphatase PP2A. Similar to the effects of PP1, PP2A (5Uml_1) produced a transient increase in Ca(2+) spark frequency (~4-fold) followed by a depression of event occurrence and decreased SR Ca(2+) content (by 82 % and 65 %, respectively). Also similar to the action of PP1, PP2A increased

  •  the amplitude and
  • spatio-temporal spread (i.e. rise-time, duration and width) of Ca(2+) sparks at 1 min
  • and suppressed the same parameters at 5 min of exposure to the enzyme (Table 1).

Together, these results suggest that phosphatases enhance spark-mediated SR Ca2+ release, leading to decreased SR Ca(2+) content. Preventive effects of calyculin A and okadaic acid Preventive effects of ryanodine

PP1-mediated RyR dephosphorylation

F3.large  cardiomyocyte SR F3.large  cardiomyocyte SR F2.large   RyR and calcium coupled receptors coupled receptors The cardiac RyR is phosphorylated at Ser-2809 (in the rabbit sequence) by both PKA and CAMKII (Witcher et al. 1991; Marx et al. 2000). Although additional phosphorylation sites may exist on the RyR (Rodriguez et al. 2003), but Ser-2809 is believed to be the only site that is phosphorylated by PKA, and RyR hyperphosphorylation at this site has been reported in heart failure (Marx et al. 2000).  To test whether indeed phosphatases dephosphorylated the RyR in our permeabilized myocyte experiments we performed quantitative immunoblotting using an antibody that specifically recognizes the phosphorylated form of the RyR at Ser-2809 (Rodriguez et al. 2003). Myocytes exhibited a significant level of phosphorylation under baseline conditions. Maximal phosphorylation was 201 % of control. When exposed to 2Uml_1 PP1, RyR phosphorylation was 58 % of the control basal condition. Exposing to a higher PP1 concentration (10Uml_1) further reduced RyR phosphorylation to 22% of control. Thus, consistent with the results of our functional measurements,

  •  PP1 decreased RyR phosphorylation in cardiac myocytes.

Figure 1. Effects of PP1 on properties of Ca(2+) sparks and SR Ca(2+) content in rat permeabilized myocytes    see .  http://dx.doi.org/10.1113/jphysiol.2003.046367 A, spontaneous Ca(2+) spark images recorded under reference conditions, and 1 or 5 min after exposure of the cell to 2Uml_1 PP1. Traces below the images are Ca(2+) transients induced by application of 10 mM caffeine immediately following the acquisition of sparks before (3 min) and after (5 min) application of PP1 in the same cell. The Ca(2+) transients were elicited by a whole bath application of 10 mM caffeine. B, averaged spark frequency at early (1 min) and late (5 min) times following the addition of either 0.5 or 2Uml_1 of PP1 to the bathing solution. C, averaged SR Ca(2+) content for 0.5 or 2Uml_1 of PP1 measured before and 5 min after exposure to the enzyme. Data are presented as means ± S.E.M. of 6 experiments in different cells. Figure 2. Effects of PP2A on properties of Ca2+ sparks and SR Ca2+ content in rat permeabilized myocytes   see .  http://dx.doi.org/10.1113/jphysiol.2003.046367 A, spontaneous Ca(2+) spark images recorded under reference conditions, and 1 or 5 min after exposure of the cell to 5Uml_1 PP2A. Traces below the images are Ca(2+) transients induced by application of 10 mM caffeine immediately following the acquisition of sparks before (3 min) and after (5 min) application of PP2A in the same cell. B and C, averaged spark frequency (B) and SR Ca(2+) content (C) for the same conditions as in A. Data are presented as means ± S.E.M. of 6 experiments in different cells.

 DISCUSSION

In the present study, we have investigated the impact of physiologically relevant exogenous protein phosphatases PP1 and PP2A on RyR-mediated SR Ca(2+) release (measured as Ca(2+) sparks) in permeabilized heart cells. Our principal finding is that

  • phosphatases stimulated RyR channels lead to depleted SR Ca(2+) stores.

These results have important ramifications for understanding the mechanisms and role of protein phosphorylation/dephosphorylation in

  •  modulation of Ca(2+) handling in normal and diseased heart.

Modulation of SR Ca2+ release by protein phosphorylation/dephophorylation

Since protein dephosphorylation clearly resulted in increased functional activity of the Ca(+)release channel, our results imply that a reverse, phosphorylation reaction should reduce RyR activity. If indeed such effects take place, why do they not manifest in inhibition of Ca(+)sparks? One possibility is that enhanced Ca(+) uptake by SERCA

  •  masks or overcomes the effects phosphorylation may have on RyRs.

In addition, the potential inhibitory influence of protein phosphorylation on RyR activity in myocytes could be countered by feedback mechanisms  involving changes in luminal Ca(2+)(Trafford et al. 2002; Gyorke et al. 2002). In particular, reduced open probability of RyRs would be expected to lead to

  •  increased Ca2+ accumulation in the SR;
  • and increased intra-SR [Ca(2+)], in turn would
  • increase activity of RyRs at their luminal Ca(2+) regulatory sites

as demonstrated for the RyR channel inhibitor tetracaine (Gyorke et al. 1997; Overend et al. 1997). Thus

  • potentiation of SERCA
  • combined with the intrinsic capacity of the release mechanism to self-regulate

could explain at least in part why PKA-mediated protein phoshorylation results in maintained potentiation of Ca(2+) sparks despite a potential initial decrease in RyR activity.

Role of altered RyR Phosphorylation in Heart Failure

Marx et al. (2000) have proposed that  enhanced levels of circulating catecholamines lead to increased phosphorylation of RyR in heart failure.  Based on biochemical observations as well as on studying properties of single RyRs incorporated into artificial lipid bilayers, these investigators have hypothesized that

  •  hyperphosphorylation of RyRs contributes to pathogenesis of heart failure
    • by making the channel excessively leaky due to dissociation of FKBP12.6 from the channel.

We show that the mode of modulation of RyRs by phosphatases does not support this hypothesis as

  • dephosphorylation caused activation instead of

Interestingly, our results provide the basis for a different possibility in which

  •  dephophosphorylation of RyR rather than its phosphorylation causes depletion of SR Ca(2+) stores by stimulating RyRs in failing hearts.

It has been reported that PP1 and PP2 activities are increased in heart failure (Huang et al. 1999; Neumann et al. 1997; Neuman, 2002). Furthermore,  overexpression of PP1 or ablation of the endogenous PP1 inhibitor, l-1, results in

  • depressed contractile performance and heart failure (Carr et al. 2002).

Our finding that PP1 causes depletion of SR Ca(2+) stores by activating RyRs could account for, or contribute to, these results.

References

1 DelPrincipe F, Egger M, Pignier C & Niggli E (2001). Enhanced E-C coupling efficiency after beta-stimulation of cardiac myocytes. Biophys J 80, 64a. 2 Gyorke I & Gyorke S (1998). Regulation of the cardiac ryanodine receptor channel by luminal Ca2+ involves luminal Ca2+ sensing sites. Biophys J 75, 2801–2810. 3 Gyorke S, Gyorke I, Lukyanenko V, Terentyev D, Viatchenko-Karpinski S & Wiesner TF (2002). Regulation of sarcoplasmic reticulum calcium release by luminal calcium in cardiac muscle. Front Biosci 7, d1454–d1463. 4 Gyorke I, Lukyanenko V & Gyorke S (1997). Dual effects of tetracaine on spontaneous calcium release in rat ventricular myocytes. J Physiol 500, 297–309. 5 MacDougall LK, Jones LR & Cohen P (1991). Identification of the major protein phosphatases in mammalian cardiac muscle which dephosphorylate phospholamban. Eur J Biochem 196, 725–734. 6 Marx SO, Reiken S, Hisamatsu Y, Jayaraman T, Burkhoff D, Rosemblit N & Marks AR (2000). PKA phosphorylation dissociates FKBP12.6 from the calcium release channel (ryanodine receptor): defective regulation in failing hearts. Cell 101, 365–376. 7 Rodriguez P, Bhogal MS & Colyer J (2003). Stoichiometric phosphorylation of cardiac ryanodine receptor on serine-2809 by calmodulin-dependent kinase II and protein kinase A. J Biol Chem (in press).

The δC Isoform of CaMKII Is Activated in Cardiac Hypertrophy and Induces Dilated Cardiomyopathy and Heart Failure

T Zhang, LS Maier, ND Dalton, S Miyamoto, J Ross, DM Bers, JH Brown.  University of California, San Diego, La Jolla, Calif; and Loyola University, Chicago, Ill. Circ Res. 2003;92:912-919.    http://dx.doi.org/10.1161/01.RES.0000069686.31472.C5 Recent studies have demonstrated that transgenic (TG) expression of either Ca(2+)/calmodulin-dependent protein kinase IV (CaMKIV) or CaMKIIδB, both of which localize to the nucleus, induces cardiac hypertrophy. However,

  •  CaMKIV is not present in heart, and
  • cardiomyocytes express not only the nuclear CaMKIIδB
    • but also a cytoplasmic isoform, CaMKII δC.

In the present study, we demonstrate that

  1.  expression of the δC isoform of CaMKII is selectively increased and
  2. its phosphorylation elevated as early as 2 days and continuously for up to 7 days after pressure overload.

To determine whether enhanced activity of this cytoplasmic δC isoform of CaMKII can lead to phosphorylation of Ca(2+) regulatory proteins and induce hypertrophy, we generated TG mice that expressed the δC isoform of CaMKII.  Immunocytochemical staining demonstrated that the expressed transgene is confined to the cytoplasm of cardiomyocytes isolated from these mice. These mice develop a dilated cardiomyopathy with up to a 65% decrease in fractional shortening and die prematurely. Isolated myocytes are enlarged and exhibit reduced contractility and altered Ca2(2+) handling. Phosphorylation of the ryanodine receptor (RyR) at a CaMKII site is increased even before development of heart failure, and

  • CaMKII is found associated with the RyR  from the CaMKII TG mice.
  • Phosphorylation of phospholamban is increased specifically at the CaMKII but not at the PKA phosphorylation site.

These findings are the first to demonstrate that CaMKIIδC can mediate phosphorylation of Ca(2+) regulatory proteins in vivo and provide evidence for the involvement of CaMKIIδC activation in the pathogenesis of dilated cardiomyopathy and heart failure.  Multifunctional Ca(2+)/calmodulin-dependent protein kinases (CaM kinases or CaMKs) are transducers of Ca2+ signals that phosphorylate a wide range of substrates and thereby affect Ca(2+)-mediated cellular responses.1 The family includes CaMKI and CaMKIV, monomeric enzymes activated by CaM kinase kinase,2,3 and CaMKII, a multimer of 6 to 12 subunits activated by autophosphorylation.1 The CaMKII subunits α, β, γ, and δ show different tissue distributions,1 with

  • the δ isoform predominating in the heart.4–7
  • Splice variants of the δ isoform, characterized by the presence of a second variable domain,4,7 include δB, which contains a nuclear localization signal (NLS), and
  • δC, which does not. CaMKII composed of δB subunits localizes to the nucleus, whereas CaMKIIδC localizes to the cytoplasm.4,8,9

CaMKII has been implicated in several key aspects of acute cellular Ca(2+) regulation related to cardiac excitation-contraction (E-C) coupling. CaMKII

  • phosphorylates sarcoplasmic reticulum (SR) proteins including the ryanodine receptors (RyR2) and
  • phospholamban (PLB).10–14

Phosphorylation of RyR has been suggested to alter the channel open probability,14,15 whereas phosphorylation of PLB has been suggested to regulate SR Ca(2+) uptake.14 It is also likely that CaMKII phosphorylates the L-type Ca(2+) channel complex or an associated regulatory protein and thus

  1. mediates Ca(2+) current (ICa) facilitation.16-18 and
  2. the development of early after-depolarizations and arrhythmias.19

Thus, CaMKII has significant effects on E-C coupling and cellular Ca(2 +) regulation. Nothing is known about the CaMKII isoforms regulating these responses.  Contractile dysfunction develops with hypertrophy, characterizes heart failure, and is associated with changes in cardiomyocyte (Ca2+) homeostasis.20  CaMKII expression and activity are altered in the myocardium of rat models of hypertensive cardiac hypertrophy21,22 and heart failure,23 and

  • in cardiac tissue from patients with dilated cardiomyopathy.24,25

Several transgenic mouse models have confirmed a role for CaMK in the development of cardiac hypertrophy, as originally suggested by studies in isolated neonatal rat ventricular myocytes.9,26–28 Hypertrophy develops in transgenic mice that overexpress CaMKIV,27 but this isoform is not detectable in the heart,4,29 and CaMKIV knockout mice still develop hypertrophy after transverse aortic constriction (TAC).29  Transgenic mice overexpressing calmodulin developed severe cardiac hypertrophy,30 later shown to be associated with an increase in activated CaMKII31; the isoform of CaMKII involved in hypertrophy could not be determined from these studies. We recently reported that transgenic mice that overexpress CaMKIIδB, which is highly concentrated in cardiomyocyte nuclei, develop hypertrophy and dilated cardiomyopathy.32 To determine whether

  • in vivo expression of the cytoplasmic CaMKIIδC can phosphorylate cytoplasmic Ca(2+) regulatory proteins and
  • induce hypertrophy or heart failure,

we generated transgenic (TG) mice that expressed the δC isoform of CaMKII under the control of the cardiac specific α-myosin heavy chain (MHC) promoter. Our findings implicate CaMKIIδC in the pathogenesis of dilated cardiomyopathy and heart failure and suggest that

  • this occurs at least in part via alterations in Ca(2+) handling proteins.33

Ca(2+) and contraction RyR yuan_image3  Ca++ exchange yuan_image3  Ca++ exchange

Results

 Expression and Activation of CaMKIIδC Isoform After TAC

To determine whether CaMKII was regulated in pressure overload–induced hypertrophy, CaMKIIδ expression and phosphorylation were examined by Western blot analysis using left ventricular samples obtained at various times after TAC.  A selective increase (1.6-fold) in the lower band of CaMKIIδwas observed as early as 1 day and continuously for 4 days (2.3-fold) and 7 days (2-fold) after TAC (Figure 1A).  To confirm that CaMKIIδC was increased and determine whether this occurred at the transcriptional level, we performed semiquantitative RT-PCR using primers specific for the CaMKIIδC isoform. These experiments revealed that

  • mRNA levels for CaMKIIδC were increased 1 to 7 days after TAC (Figure 1B).

In addition to examining CaMKII expression, the activation state of CaMKII was monitored by its autophosphorylation, which confers Ca2-independent activity.

Figure 1. Expression and activation of CaMKII δC isoform after TAC.

see http://dx.doi.org/10.1161/01.RES.0000069686.31472.C5 A, Western blot analysis of total CaMKII in left ventricular (LV) homogenates obtained at indicated times after TAC. Cardiomyocytes transfected with CaMKIIδB and δC (right) served as positive controls and molecular markers. Top band (58 kDa) represents CaMKIIδB plus δ9, and the bottom band (56 kDa) corresponds to CaMKIIδC. *P0.05 vs control. B, Semiquantitative RT-PCR using primers specific for CaMKIIδC isoform (24 cycles) and GAPDH (19 cycles) using total RNA isolated from the same LV samples. C, Western blot analysis of phospho-CaMKII in LV homogenates obtained at various times after TAC. Three bands seen for each sample represent CaMKIIγ subunit (uppermost), CaMKIIδB plus δ9 (58 kDa), and CaMKIIδC (56 kDa). Quantitation is based on the sum of all of the bands. *P0.05 vs control.

 Figure 2. Expression and activation of CaMKII in CaMKIIδC transgenic mice.

see  http://dx.doi.org/10.1161/01.RES.0000069686.31472.C5 A, Transgene copy number based on Southern blots using genomic DNA isolated from mouse tails (digested with EcoRI). Probe (a 32P-labeled 1.7-kb EcoRI-SalI -MHC fragment) was hybridized to a 2.3-kb endogenous fragment (En) and a 3.9-kb transgenic fragment (TG). Transgene copy number was determined from the ratio of the 3.9-kb/2.3-kb multiplied by 2. B, Immunocytochemical staining of ventricular myocytes isolated from WT and CaMKIIδTG mice. Myocytes were cultured on laminin-coated slides overnight. Transgene was detected by indirect immunofluorescence staining using rabbit anti-HA antibody (1:100 dilution) followed by FITC-conjugated goat antirabbit IgG antibody (1:100 dilution). CaMKIIδB localization to the nucleus in CaMKIIδB TG mice (see Reference 32) is shown here for comparative purpose. C, Quantitation of the fold increase in CaMKIIδprotein expression in TGL and TGM lines. Different amounts of ventricular protein (numbers) from WT control, TG () and their littermates () were immunoblotted with an anti-CaMKIIδ antibody. Standard curve from the WT control was used to calculate fold increases in protein expression in TGL and TGM lines. D, Phosphorylated CaMKII in ventricular homogenates was measured by Western blot analysis (n5 for each group). **P0.01 vs WT.

 Generation and Identification of CaMKIIδC Transgenic Mice

TG mice expressing HA-tagged rat wild-type CaMKIIδC under the control of the cardiac-specific α-MHC promoter were generated as described in Materials and Methods. By Southern blot analysis, 3 independent TG founder lines carrying 3, 5, and 15 copies of the transgene were identified. They were designated as TGL (low copy number), TGM (medium copy number), and TGH (high copy number), The founder mice from the TGH line died at 5 weeks of age with marked cardiac enlargement.  The other two lines showed germline transmission of the transgene. The transgene was expressed only in the heart. Although CaMKII protein levels in TGL and TGM hearts were increased 12- and 17-fold over wild-type (WT) controls (Figure 2C), the amount of activated CaMKII was only increased 1.7- and 3-fold in TGL and TGM hearts (Figure 2D). The relatively small increase in CaMKII activity in the TG lines probably reflects the fact that the enzyme is not constitutively activated and that the availability of Ca2/CaM, necessary for activation of the overexpressed CaMKII, is limited. Importantly,

  • the extent of increase in active CaMKII in the TG lines was similar to that elicited by TAC.

 Cardiac Overexpression of CaMKIIδC Induces Cardiac Hypertrophy and Dilated Cardiomyopathy

There was significant enlargement of hearts from CaMKIIδC TGM mice by 8 to 10 weeks [see  http://dx.doi.org/10.1161/01.RES.0000069686.31472.C5%5D  (Figure 3A) and from TGL mice by 12 to 16 weeks. Histological analysis showed ventricular dilation (Figure 3B), cardiomyocyte enlargement (Figure 3C), and mild fibrosis (Figure 3D) in CaMKIIδC TG mice. Quantitative analysis of cardiomyocyte cell volume from 12-week-old TGM mice gave values of 54.7 + 0.1 pL for TGM (n = 96) versus 28.6 + 0.1 pL for WT littermates (n=94; P0.001). Ventricular dilation and cardiac dysfunction developed over time in proportion to the extent of transgene expression. Left ventricular end diastolic diameter (LVEDD) was increased by 35% to 45%, left ventricular posterior wall thickness (LVPW) decreased by 26% to 29% and fractional shortening decreased by 50% to 60% at 8 weeks for TGM and at 16 weeks for TGL. None of these parameters were significantly altered at 4 weeks in TGM or up to 11 weeks in TGL mice, indicating that heart failure had not yet developed.  Contractile function was significantly decreased. Figure 6. Dilated cardiomyopathy and dysfunction in CaMKIIδC TG mice at both whole heart and single cell levels.  [see Fig 6:  http://dx.doi.org/10.1161/01.RES.0000069686.31472.C5] C, Decreased contractile function in ventricular myocytes isolated from 12-week old TGM and WT controls presented as percent change of resting cell length (RCL) stimulated at 0.5 Hz. Representative trace and mean values are shown. *P0.05 vs WT. Figure 7. Phosphorylation of PLB in CaMKIIδC TG mice.  [see Fig 7: http://dx.doi.org/10.1161/01.RES.0000069686.31472.C5] Thr17 and Ser16 phosphorylated PLB was measured by Western blots using specific anti-phospho antibodies. Ventricular homogenates were from 12- to 14-week-old WT and TGM mice (A) or 4 to 5-week-old WT and TGM mice (B). Data were normalized to total PLB examined by Western blots (data not shown here). n = 6 to 8 mice per group; *P0.05 vs WT.

 Cardiac Overexpression of CaMKIIδC Results in Changes in the Phosphorylation of Ca2 Handling Proteins

To assess the possible involvement of phosphorylation of Ca2cycling proteins in the phenotypic changes observed in the CaMKIIC TG mice, we first compared PLB phosphorylation state in homogenates from 12- to 14-week-old TGM and WT littermates. Western blots using antibodies specific for phosphorylated PLB showed a 2.3-fold increase in phosphorylation of Thr17 (the CaMKII site) in hearts from TGM versus WT (Figure 7A). Phosphorylation of PLB at the CaMKII site was also increased 2-fold in 4- to 5-week-old TGM mice (Figure 7B). Significantly, phosphorylation of the PKA site (Ser16) was unchanged in either the older or the younger TGM mice (Figures 7A and 7B). (see  http://dx.doi.org/10.1161/01.RES.0000069686.31472.C5)  To demonstrate that the RyR2 phosphorylation changes observed in the CaMKII transgenic mice are not secondary to development of heart failure, we performed biochemical studies examining RyR2 phosphorylation in 4- to 5-week-old TGM mice. At this age, most mice showed no signs of hypertrophy or heart failure (see Figure 6B) and there was no significant increase in myocyte size (21.3 + 1.3 versus 27.7 + 4.6 pL; P0.14). Also, twitch Ca2 transient amplitude was not yet significantly depressed, and mean δ [Ca2+]i (1 Hz) was only 20% lower (192 + 36 versus 156 + 13 nmol/L; P0.47) versus 50% lower in TGM at 13 weeks.33  The in vivo phosphorylation of RyR2, determined by back phosphorylation, was significantly (2.10.3-fold; P0.05) increased in these 4- to 5-week-old TGM animals (Figure 8C), an increase equivalent to that seen in 12- to 14-week-old mice. We also performed the RyR2 back-phosphorylation assay using purified CaMKII rather than PKA. RyR2 phosphorylation at the CaMKII site was also significantly increased (2.2 + 0.3-fold; P0.05) in 4- to 5-week-old TGM mice (Figure 8C).  (http://dx.doi.org/10.1161/01.RES.0000069686.31472.C5) The association of CaMKII with the RyR2 is consistent with a physical interaction between this protein kinase and its substrate. The catalytic subunit of PKA and the phosphatases PP1 and PP2A were also present in the RyR2 immunoprecipitates, but not different in WT versus TG mouse hearts (Figure 8D). These data provide further evidence that

  • the increase in RyR2 phosphorylation, which precedes development of failure in the 4- to 5-week-old CaMKIIδC TG hearts, can be attributed to the increased activity of CaMKII.

 Discussion

  1. CaMKII is involved in the dynamic modulation of cellular
  2. Ca2 regulation and has been implicated in the development of cardiac hypertrophy and heart failure.14
  3. Published data from CaMK-expressing TG mice demonstrate that forced expression of CaMK can induce cardiac hypertrophy and lead to heart failure.27,32

However, the CaMK genes expressed in these mice are neither the endogenous isoforms of the enzyme nor the isoforms likely to regulate cytoplasmic Ca(2+) handling, because they localize to the nucleus.

  1.  the cytoplasmic cardiac isoform of CaMKII is upregulated at the expression level and is in the active state (based on autophosphorylation) after pressure overload induced by TAC.
  2.  two cytoplasmic CaMKII substrates (PLB and RyR) are phosphorylated in vivo when CaMKII is overexpressed and its activity increased to an extent seen under pathophysiological conditions.
  3. CaMKIIδ is found to associate physically with the RyR in the heart.
  4.  heart failure can result from activation of the cytoplasmic form of CaMKII and this may be due to altered Ca(2+) handling.

 Differential Regulation of CaMKIIδ Isoforms in Cardiac Hypertrophy

  1.  The isoform of CaMKII that predominates in the heart is the δ isoform.4–7 Neither the α nor the β isoforms are expressed and there is only a low level of expression of the γ isoforms.39
  2. Both δB and δC splice variants of CaMKIIδ are present in the adult mammalian myocardium36,40 and expressed in distinct cellular compartments.4,8,9

We suggest that the CaMKIIδ isoforms are differentially regulated in pressure-overload–induced hypertrophy, because the expression of CaMKIIδC is selectively increased as early as 1 day after TAC. Studies using RT-PCR confirm that

  • CaMKIIδC is regulated at the transcriptional level in response to TAC. In addition,
  • activation of both CaMKIIδB and CaMKIIδC, as indexed by autophosphorylation, increases as early as 2 days after TAC.
  • Activation of CaMKIIδB by TAC is relevant to our previous work indicating its role in hypertrophy.9,32
  • The increased expression, as well as activation of the CaMKIIδC isoform, suggests that it could also play a critical role in both the acute and longer responses to pressure overload.

In conclusion, we demonstrate here that CaMKIIδC can phosphorylate RyR2 and PLB when expressed in vivo at levels leading to 2- to 3-fold increases in its activity. Similar increases in CaMKII activity occur with TAC or in heart failure. Data presented in this study and in the accompanying article33 suggest that altered phosphorylation of Ca(2+) cycling proteins is a major component of the observed decrease in contractile function in CaMKIIδC TG mice. The occurrence of increased CaMKII activity after TAC, and of RyR and PLB phosphorylation in the CaMKIIδC TG mice suggest that

  • CaMKIIδC plays an important role in the pathogenesis of dilated cardiomyopathy and heart failure.

These results have major implications for considering CaMKII and its isoforms in exploring new treatment strategies for heart failure.

Cardiac Electrophysiological Dynamics From the Cellular Level to the Organ Level

Daisuke Sato and Colleen E. Clancy Department of Pharmacology, University of California – Davis, Davis, CA. Biomedical Engineering and Computational Biology 2013:5: 69–75 http://www.la-press.com.   http://dx.doi.org/10.4137/BECB.S10960 Abstract: Cardiac alternans describes contraction of the ventricles in a strong-weak-strong-weak sequence at a constant pacing fre­quency. Clinically, alternans manifests as alternation of the T-wave on the ECG and predisposes individuals to arrhythmia and sudden cardiac death. In this review, we focus on the fundamental dynamical mechanisms of alternans and show how alternans at the cellular level underlies alternans in the tissue and on the ECG. A clear picture of dynamical mechanisms underlying alternans is important to allow development of effective anti-arrhythmic strategies. The cardiac action potential is the single cellular level electrical signal that triggers contraction of the heart.1 Under normal conditions, the originating activation signal comes from a small bundle of tissue in the right atrium called the sinoatrial node (SAN). The action potentials generated by the SAN initiate an excitatory wave that, in healthy tissue, propagates smoothly through a well-defined path and causes excitation and contraction in the ventricles. In disease states, the normal excitation pathway is disrupted and a variety of abnormal rhythms can occur, including cardiac alternans, a well-known precursor to sudden cardiac death. Cardiac alternans was initially documented in 1872 by a German physician, Ludwig Traube.2 He observed contraction of the ventricles in a strong-weak-strong-weak sequence even though the pacing frequency was constant. Clinically, alternans mani­fests as alternation of the T-wave on the ECG, typi­cally in the microvolt range. It is well established that individuals with microvolt T-wave alternans are at much higher risk for arrhythmia and sudden cardiac death. A clear picture of physio­logical mechanisms underlying alternans is important to allow development of effective anti-arrhythmic drugs. It is also important to understand dynamical mechanisms because while the cardiac action poten­tial is composed of multiple currents, each of which confers specific properties, revelation of dynamical mechanisms provides a unified fundamental view of the emergent phenomena that holds independently of specific current interactions. The ventricular myocyte is an excitable cell pro­viding the cellular level electrical activity that under­lies cardiac contraction. Under resting conditions, the membrane potential is about -80 mV. When the cell is stimulated, sodium (Na) channels open and the membrane potential goes above 0 mV. Then, a few ms later, the inward current L-type calcium (Ca) current activates and maintains depolarization of the mem­brane potential. During this action potential plateau, several types of outward current potassium (K) chan­nels also activate. Depending on the balance between inward and outward currents, the action potential duration (APD) is determined.The diastolic interval (DI) that follows cellular repolarization describes the duration the cell resides in the resting state until the next excitation. During the DI, channels recover with kinetics determined by intrinsic time constants. APD restitution defines the relationship between the APD and the previous DI (Fig. 1 top panel). In most cases1, the APD becomes longer as the previous DI becomes longer due to recovery of the L-type Ca channel (Fig. 1, bottom panel), and thus the APD restitution curve has a positive slope. Figure 1. (Top): APD and DI. (Bottom): The physiological mechanism of APD alternans involves recovery from inactivation of ICaL.  [see  http://dx.doi.org/10.4137/BECB.S10960]

 Action Potential Duration Restitution

In 1968 Nolasco and Dahlen showed graphically that APD alternans occurs when the slope of the APD res­titution curve exceeds unity. Why is the steepness of the slope important? As shown graphically in Figure 2, APD alternans amplitude is multiplied by the slope of the APD restitution curve in each cycle. When the slope is larger than one, then the alternans amplitude will be amplified until the average slope reaches 1 or the cell shows a 2:1 stimulus to response ratio.  The one-dimensional mapping between APD and DI fails to explain quasi-periodic oscillation of the APD. Figure 2. APD restitution and dynamical mechanism of APD alternans.   [see  http://dx.doi.org/10.4137/BECB.S10960]

Calcium Driven Alternans

A strong-weak-strong-weak oscillation in contrac­tion implies that the Ca transient (CaT) is alternating. Until 1999 it was assumed that if the APD is alternat­ing then the CaT alternates because the CaT follows APD changes. However, Chudin et al showed that CaT can alternate even when APD is kept constant during pacing with a periodic AP clamp waveform.14 This implies that the intracellular Ca cycling has intrinsic nonlinear dynamics. A critical component in this process is the sarcoplasmic reticulum (SR), a subcellular organelle that stores Ca inside the cell. When Ca enters a cell through the L-type Ca channel (or reverse mode Na-Ca exchanger (NCX) ryanodine receptors open and large Ca releases occur from the SR (Ca induced Ca release). The amount of Ca release steeply depends on SR Ca load. This steep relation between Ca release and SR Ca load is the key to induce CaT alternans.  A one-dimensional map between Ca release and SR calcium load can be constructed to describe the relationship21 similar to the map used in APD restitution.

 Subcellular Alternans

A number of experimental and computational stud­ies have been undertaken to identify molecular mechanisms of CaT alternans by identifying the specific components in the calcium cycling process critical to formation of CaT alternans. These compo­nents include SR Ca leak and load, Ca spark frequency and amplitude, and rate of SR refilling. For example, experiments have shown that alternation in diastolic SR Ca is not required for CaT alternans.24 In addition, stochastic openings of ryanodine receptors (RyR) lead to Ca sparks that occur randomly, not in an alternating sequence that would be expected to underlie Ca altern-ans. So, how do local random sparks and constant dia­stolic SR calcium load lead to global CaT alternans? Mathematical models with detailed representations of subcellular Ca cycling have been developed in order to elucidate the underlying mechanisms. Model­ing studies have shown that even when SR Ca load is not changing, RyRs, which are analogous to ICaL in APD alternans, recover gradually from refractoriness. As RyR availability increases (for example during a long diastolic interval) a single Ca spark from a RyR will be larger in amplitude and recruit neighboring Ca release units to generate more sparks. The large resultant CaT causes depletion of the SR and when complete recovery of RyRs does not occur prior to the arrival of the next stimulus, the subsequent CaT will be small. This process results in an alternans of CaT amplitude from beat-to-beat.

 Coupling Between the Membrane Potential and Subcellular Calcium Dynamics

Importantly, the membrane voltage and intracellu­lar Ca cycling are coupled via Ca sensitive channels such as the L-type Ca channel and the sodium-calcium exchanger (NCX). The membrane voltage dynamics and the intracellular Ca dynamics are bi-directionally coupled. One direction is from voltage to Ca. As the DI becomes longer, the CaT usually becomes larger since the recovery time for the L-type Ca channel in increased and the SR Ca release becomes larger. The other direction is from Ca to voltage. Here we consider two major currents, NCX and ICaL. As the CaT becomes larger, forward mode NCX becomes larger and pro­longs APD. On the other hand, as the CaT becomes larger, ICaL becomes smaller due to Ca-induced inacti­vation, and thus, larger CaT shortens the APD. There­fore, depending on which current dominates, larger CaT can prolong or shorten APD. If a larger CaT pro­longs (shortens) the APD, then the coupling is positive (negative). The coupled dynamics of the membrane voltage and the intracellular Ca cycling can be cate­gorized by the instability of membrane voltage (steep APD restitution), instability of the intracellular Ca cycling (steep relation between Ca release versus SR Ca load), and the coupling (positive or negative). If the coupling is positive, alternans is electromechani­cally concordant (long-short-long-short APD cor­responds to large-small-large-small CaT sequence) regardless of the underlying instability mechanism. On the other hand, if the coupling is negative, alternans is electromechanically concordant in a voltage-driven regime. However, if alternans is Ca driven, alternans becomes electromechanically discordant (long-short-long-short APD corresponds to small-large-small-large CaT sequence). It is also possible to induce quasi- periodic oscillation of APD and CaT when volt­age and Ca instabilities contribute equally.

 Alternans in Higher Dimensions

Tissue level alternans in APD and CaT also occur and here we describe how the dynamical mechanism of alternans at the single cell level determines the phenomena in tissue. Spatially discordant alternans (SDA) where APDs in different regions of tissue alternate out-of-phase, is more arrhythmogenic since it causes large gradients of refractoriness and wave-break, which can initiate ventricular tachycardia and ventricular fibrillation. How is SDA induced? As the APD is a function of the previous DI, con­duction velocity (CV) is also function of the previ­ous DI (CV restitution) since the action potential propagation speed depends on the availability of the sodium channel. As the DI becomes shorter, sodium channels have less time to recover. Therefore, in general, as the DI becomes shorter, the CV becomes slower. When tissue is paced rapidly, action poten­tials propagate slowly near the stimulus, and thenac-celerate downstream as the DI becomes longer. This causes heterogeneity in APD (APD is shorter near the stimulus). During the following tissue excitation, APD becomes longer and the CV becomes faster at the pacing site then gradually APD becomes shorter and the CV becomes slower. The interaction between steep APD restitution and steep CV restitution creates SDA. This mechanism applies only when the cel­lular instability is voltage driven. When the cellular instability is Ca driven, the mechanism of SDA formation is different. If the volt­age-Ca coupling is negative, SDA can form without steep APD and CV restitution. The mechanism can be understood as follows. First, when cells are uncou­pled, alternans of APD and Ca are electromechanically discordant. If two cells are alternating in opposite phases, once these cells are coupled by voltage, due to electrotonic coupling, the membrane voltage of both cells is synchronized and thus APD becomes the same. This synchronization of APD amplifies the difference of CaT between two cells (Fig. 5 in). In other words it desynchronizes CaT. This instability mechanism is also found in subcellular SDA. In the case where the instability is Ca driven and the coupling is positive, there are several interest­ing distinctive phenomena that can occur. First, the profile of SDA of Ca contains a much steeper gra­dient at the node (point in space where no alternans occurs–cells downstream of the node are alternating out of phase with those upstream of the node) com­pared to the case of voltage driven SDA. Thus, the cellular mechanism of instability can be identified by evaluating the steepness of the alternans amplitude gradient in space around the node. When the cellular instability is voltage driven, the steady-state wave­length (separation of nodes in space) depends on electrotonic coupling between cells and the steepness of APD and CV restitution, regardless of the initial conditions. However, if the cellular instability is Ca driven, the location of nodes depends on the pacing history, which includes pacing cycle length and other parameters affected by pacing frequency. In this case, once the node is formed, the location of the node may be fixed, especially when Ca instability is strong. Such an explanation may apply to recent experimen­tal results. Summary In this review, we described how the origin of alternans at the cellular level (voltage driven, Ca drive, coupling between voltage and Ca) affects the formation of spatially discordant alternans at the tissue level. Cardiac alternans is a multi-scale emergent phenomenon. Channel properties determine the instability mechanism at the cellular level. Alternans mechanisms at cellular level determine SDA patterns at the tissue level. In order to understand alternans and develop anti-arrhythmic drug and therapy, multi-scale modeling of the heart is useful, which is increasingly enabled by emerging technologies such as general-purpose computing on graphics processing units (GPGPU) and cloud computing.

English: Diagram of contraction of smooth musc...

English: Diagram of contraction of smooth muscle fiber (Photo credit: Wikipedia)

Schematic representation of Calcium Cycling in Contractile and Proliferating VSMCs receptors voltage gated Ca(2) channel Marks-Wehrens Model and multiphosphorylation  site model ncpcardio0419-f4   calcium leak

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Renal Distal Tubular Ca2+ Exchange Mechanism in Health and Disease

Author and Curator: Larry H. Bernstein, MD, FCAP

Curator:  Stephen J. Williams, PhD
and

Curator: Aviva Lev-Ari, PhD, RN

Article III Renal Distal Tubular Ca2+ Exchange Mechanism in Health and Disease

Image generated by Adina Hazan, 06/30/2021

This is Part III in a series of articles on the role of Calcium Release Mechanism in cell biology and physiology.

The Series consists of the following articles:

Part I: Identification of Biomarkers that are Related to the Actin Cytoskeleton

Larry H Bernstein, MD, FCAP

http://pharmaceuticalintelligence.com/2012/12/10/identification-of-biomarkers-that-are-related-to-the-actin-cytoskeleton/

Part II: Role of Calcium, the Actin Skeleton, and Lipid Structures in Signaling and Cell Motility

Larry H. Bernstein, MD, FCAP, Stephen Williams, PhD and Aviva Lev-Ari, PhD, RN

http://pharmaceuticalintelligence.com/2013/08/26/role-of-calcium-the-actin-skeleton-and-lipid-structures-in-signaling-and-cell-motility/

Part III: Renal Distal Tubular Ca2+ Exchange Mechanism in Health and Disease

Larry H. Bernstein, MD, FCAP, Stephen J. Williams, PhD
 and Aviva Lev-Ari, PhD, RN

http://pharmaceuticalintelligence.com/2013/09/02/renal-distal-tubular-ca2-exchange-mechanism-in-health-and-disease/

Part IV: The Centrality of Ca(2+) Signaling and Cytoskeleton Involving Calmodulin Kinases and Ryanodine Receptors in Cardiac Failure, Arterial Smooth Muscle, Post-ischemic Arrhythmia, Similarities and Differences, and Pharmaceutical Targets

Larry H Bernstein, MD, FCAP, Justin Pearlman, MD, PhD, FACC and Aviva Lev-Ari, PhD, RN

http://pharmaceuticalintelligence.com/2013/09/08/the-centrality-of-ca2-signaling-and-cytoskeleton-involving-calmodulin-kinases-and-ryanodine-receptors-in-cardiac-failure-arterial-smooth-muscle-post-ischemic-arrhythmia-similarities-and-differen/

Part V: Ca2+-Stimulated Exocytosis:  The Role of Calmodulin and Protein Kinase C in Ca2+ Regulation of Hormone and Neurotransmitter

Larry H Bernstein, MD, FCAP
and
Aviva Lev-Ari, PhD, RN

http://pharmaceuticalintelligence.com/2013/12/23/calmodulin-and-protein-kinase-c-drive-the-ca2-regulation-of-hormone-and-neurotransmitter-release-that-triggers-ca2-stimulated-exocytosis/

Part VI: Calcium Cycling (ATPase Pump) in Cardiac Gene Therapy: Inhalable Gene Therapy for Pulmonary Arterial Hypertension and Percutaneous Intra-coronary Artery Infusion for Heart Failure: Contributions by Roger J. Hajjar, MD

Aviva Lev-Ari, PhD, RN

http://pharmaceuticalintelligence.com/2013/08/01/calcium-molecule-in-cardiac-gene-therapy-inhalable-gene-therapy-for-pulmonary-arterial-hypertension-and-percutaneous-intra-coronary-artery-infusion-for-heart-failure-contributions-by-roger-j-hajjar/

Part VII: Cardiac Contractility & Myocardium Performance: Ventricular Arrhythmias and Non-ischemic Heart Failure – Therapeutic Implications for Cardiomyocyte Ryanopathy (Calcium Release-related Contractile Dysfunction) and Catecholamine Responses

Justin Pearlman, MD, PhD, FACC, Larry H Bernstein, MD, FCAP and Aviva Lev-Ari, PhD, RN

http://pharmaceuticalintelligence.com/2013/08/28/cardiac-contractility-myocardium-performance-ventricular-arrhythmias-and-non-ischemic-heart-failure-therapeutic-implications-for-cardiomyocyte-ryanopathy-calcium-release-related-contractile/

Part VIII: Disruption of Calcium Homeostasis: Cardiomyocytes and Vascular Smooth Muscle Cells: The Cardiac and Cardiovascular Calcium Signaling Mechanism

Justin Pearlman, MD, PhD, FACC, Larry H Bernstein, MD, FCAP and Aviva Lev-Ari, PhD, RN

http://pharmaceuticalintelligence.com/2013/09/12/disruption-of-calcium-homeostasis-cardiomyocytes-and-vascular-smooth-muscle-cells-the-cardiac-and-cardiovascular-calcium-signaling-mechanism/

Part IX: Calcium-Channel Blockers, Calcium Release-related Contractile Dysfunction (Ryanopathy) and Calcium as Neurotransmitter Sensor

Justin Pearlman, MD, PhD, FACC, Larry H Bernstein, MD, FCAP and Aviva Lev-Ari, PhD, RN

Part X: Synaptotagmin functions as a Calcium Sensor: How Calcium Ions Regulate the fusion of vesicles with cell membranes during Neurotransmission

Larry H Bernstein, MD, FCAP and Aviva Lev-Ari, PhD, RN

http://pharmaceuticalintelligence.com/2013/09/10/synaptotagmin-functions-as-a-calcium-sensor-how-calcium-ions-regulate-the-fusion-of-vesicles-with-cell-membranes-during-neurotransmission/

Part XI: Sensors and Signaling in Oxidative Stress

Larry H. Bernstein, MD, FCAP

http://pharmaceuticalintelligence.com/2013/11/01/sensors-and-signaling-in-oxidative-stress/

Part XII: Atherosclerosis Independence: Genetic Polymorphisms of Ion Channels Role in the Pathogenesis of Coronary Microvascular Dysfunction and Myocardial Ischemia (Coronary Artery Disease (CAD))

Larry H Bernstein, MD, FCAP and Aviva Lev-Ari, PhD, RN

http://pharmaceuticalintelligence.com/2013/12/21/genetic-polymorphisms-of-ion-channels-have-a-role-in-the-pathogenesis-of-coronary-microvascular-dysfunction-and-ischemic-heart-disease/

Renal Distal Tubular Ca2+ Exchange Mechanism

This is the Third article of a multipart series covering Ca(2+) signaling and the cytoskeleton, and two on Ca2+ in cardiac contractility governed by the activations involving a ryanodine (RyR2) receptor and a specific calmodulin protein CaKIIδ with B and C splice variants.  In all of these discussions, Ca(2+) has a crucial role in many cellular events, not all of which are detailed, and its importance to cardiac function and function disorders is critical.   We shall next undertake the difficult examination of Ca(2+) movements in the kidney, which has a special relationship to vitamin D and bone mineral metabolism that is not of interest here.   Nor will we go into any depth on the importance of the kidney to maintenance of plasma H+ and K+ balance and metabolic acidosis.   Whereas the lung has a large role in pH maintenance by the respiratory rate (under sympathetic control), it maintains the balance through the expiration of CO2, with H+ tied up in water via the carbonic anhydrase reaction.

Key words, abbreviations:

calcium, magnesium, phosphate, renal calcium transport, calcium channels, diltiazem, mibefradil, ω-conotoxin. FGF23, Parathyroid hormone (PTH), Thick Ascending Loop (TAL), cTAL, proximal tubule, distal convoluted tubule (DCL), chronic kidney disease, Ca2+-ATPase, Ca2+-stimulated adenosine triphosphatase, Na++K-E-ATPase: (Na++K+)-stimulated adenosine triphosphatase, Na+-K+-2Cl cotransporter (NKCC@),TRPV6, calbindin- D9K, Ca2+ – ATPase, 4-(2-hydroxyethyl)-1-piperazine-ethanesulphonic acid, Non-hypertensive uremic, de novo cardiomyopathy, renal transplantation, karyotypes, isoform, Angiotensin converting enzyme (ACE), Basic fibroblast growth factor (BFGF), Extracellular signal regulated kinase (ERK), Friend leukemia integration-1 transcription factor (Fli-1), Growth hormone (GSH),  oxidative stress, Nitric oxide (NO),  Protein kinase C (PKC),angiotensin II,  Renin-angiotensin system (RAS), Transforming growth factor-beta (TGF-b), Vascular endothelial growth factor (VEGF), 22-oxacalcitriol (OCT), Calcium-sensing receptor (CaSR),  Claudin14, Claudin 16, bradykinin,  bradykinin B2 receptor antagonists, inosine,  marino-bufagenin (MBG),  ramipril, nifedipine or moxonidine, calcitriol, Vitamin D receptor (VDR), Alpha-Kloth and FGf23

The first part in the Series, excludes calcium related heart failure and  arrhythmias of calcium  and includes the following:

(Part I) Identification of Biomarkers that are Related to the Actin Cytoskeleton
Curator: Larry H Bernstein, MD, FCAP

http://pharmaceuticalintelligence.com/2012/12/10/identification-of-biomarkers-that-are-related-to-the-actin-cytoskeleton/

(Part II) Role of Calcium, the Actin Skeleton, and Lipid Structures in Signaling and Cell Motility  
Larry H. Bernstein, MD, FCAP, Stephen Williams, PhD and Aviva Lev-Ari, PhD, RN

http://pharmaceuticalintelligence.com/2013/08/26/role-of-calcium-the-actin-skeleton-and-lipid-structures-in-signaling-and-cell-motility/

(Part III) Renal Distal Tubular Ca2+ Exchange Mechanism in Health and Disease Larry H. Bernstein, MD, FCAP, Stephen J. Williams, PhD
 and

Aviva Lev-Ari, PhD, RN

http://pharmaceuticalintelligence.com/2013/09/02/renal-distal-tubular-ca2-exchange-mechanism-in-health-and-disease/ 

This article is a continuation to the following article series on tightly related topics:

Part I: Identification of Biomarkers that are Related to the Actin Cytoskeleton

Larry H Bernstein, MD, FCAP

http://pharmaceuticalintelligence.com/2012/12/10/identification-of-biomarkers-that-are-related-to-the-actin-cytoskeleton/

(Part II) Role of Calcium, the Actin Skeleton, and Lipid Structures in Signaling and Cell Motility  
Larry H. Bernstein, MD, FCAP, Stephen Williams, PhD and Aviva Lev-Ari, PhD, RN

http://pharmaceuticalintelligence.com/2013/08/26/role-of-calcium-the-actin-skeleton-and-lipid-structures-in-signaling-and-cell-motility/

 (Part III) Renal Distal Tubular Ca2+ Exchange Mechanism in Health and Disease

Larry H. Bernstein, MD, FCAP, Stephen J. Williams, PhD
 and Aviva Lev-Ari, PhD, RN

http://pharmaceuticalintelligence.com/2013/09/02/renal-distal-tubular-ca2-exchange-mechanism-in-health-and-disease/ 

(Part IV) The Centrality of Ca(2+) Signaling and Cytoskeleton Involving Calmodulin Kinases and Ryanodine Receptors in Cardiac Failure, Arterial Smooth Muscle, Post-ischemic Arrhythmia, Similarities and Differences, and Pharmaceutical Targets

Larry H Bernstein, MD, FCAP, Justin Pearlman, MD, PhD, FACC and Aviva Lev-Ari, PhD, RN

http:/pharmaceuticalintelligence.com/2013.09.089/lhbern/The Centrality of Ca(2+) Signaling and Cytoskeleton Involving Calmodulin Kinases and Ryanodine Receptors in Cardiac Failure, Arterial Smooth Muscle, Post-ischemic Arrhythmia, Similarities and Differences, and Pharmaceutical Targets

Part V:  Heart Failure and Arrhythmia: Potential for Targeted Intervention — The Effects of Ca 2+ -calmodulin (Ca-CaM) phosphorylation/dephosphorylation/hyperphosphorylation

Larry H Bernstein, MD, FCAP, Justin Pearlman, MD, PhD, FACC and Aviva Lev-Ari, PhD, RN

http://pharmaceuticalintelligence.com/2013/08/29/ryanodine-receptor-ryr2-subunits-in-heart-failure-and-arrhythmia-potential-for-targeted-intervention-the-effects-of-ca-2-calmodulin-ca-cam-phosphorylationdephosphorylationhyperphosphoryla/

(VI) Calcium Cycling (ATPase Pump) in Cardiac Gene Therapy: Inhalable Gene Therapy for Pulmonary Arterial Hypertension and Percutaneous Intra-coronary Artery Infusion for Heart Failure: Contributions by Roger J. Hajjar, MD
Curator: Aviva Lev-Ari, PhD, RN
http://pharmaceuticalintelligence.com/2013/08/01/calcium-molecule-in-cardiac-gene-therapy-inhalable-gene-therapy-for-pulmonary-arterial-hypertension-and-percutaneous-intra-coronary-artery-infusion-for-heart-failure-contributions-by-roger-j-hajjar/

Cardiac Contractility & Myocardium Performance: Ventricular Arrhythmias and Non-ischemic Heart Failure – Therapeutic Implications for Cardiomyocyte Ryanopathy (Calcium Release-related Contractile Dysfunction) and Catecholamine Responses in the Human Heart

Justin Pearlman, MD, PhD, FACC, Larry H Bernstein, MD, FCAP and Aviva Lev-Ari, PhD, RN
http://pharmaceuticalintelligence.com/2013/08/28/cardiac-contractility-myocardium-performance-ventricular-arrhythmias-and-non-ischemic-heart-failure-therapeutic-implications-for-cardiomyocyte-ryanopathy-calcium-release-related-contractile/

Calcium Ion Transport across Plasma Membranes

Basal-lateral-plasma-membrane vesicles and brush-border-membrane vesicles were isolated from rat kidney cortex by differential centrifugation followed by free-flow electrophoresis. Ca2+ uptake into these vesicles was investigated by a rapid filtration method. Both membranes show a considerable binding of Ca2+ to the vesicle interior, making the analysis of passive fluxes in uptake experiments difficult. Only the basal-lateral-plasma-membrane vesicles exhibit an ATP-dependent pump activity which can be distinguished from the activity in mitochondrial and endoplasmic reticulum by virtue of the different distribution during free-flow electrophoresis and its lack of sensitivity to oligomycin. The basal-lateral plasma membranes contain in addition a Na+/Ca2+-exchange system which mediates a probably rheogenic counter-transport of Ca2+ and Na+ across the basal cell border. The latter system is probably involved in the secondary active Na+-dependent and ouabain-inhibitable Ca2+ reabsorption in the proximal tubule, the ATP-driven system is probably more important for the maintenance of a low concentration of intracellular Ca2+.

In recent micropuncture studies using simultaneously tubular and capillary perfusion it could be demonstrated that in the rat kidney proximal tubule Ca2+ reabsorption is dependent on the presence of Na+- ions and sensitive to ouabain (Ullrich et al., 1976). On the other hand cell-fractionation studies on the distribution of plasma-membrane-bound enzymes in rat proximal tubular epithelial cells revealed a contraluminal localization of a Ca2+-stimulated ATPase (Kinne-Saffran & Kinne, 1974). These results suggested that both Na+-driven and ATP-driven Ca2+ transport systems might be involved in proximal tubular transepithelial Ca2+ transport. Considering the low concentration of intracellular Ca2+ one could expect that these active steps in Ca2+ reabsorption are located at the basal cell pole.

To our knowledge there have been two attempts to study the role of ATP in the Ca2+ transport of renal membranes. In one study increase in Ca2+ uptake by rabbit kidney membranes was observed, but this increase was attributed to a phosphorylation of the membranes and a concomitant binding of Ca2+ to the negative charges newly generated at the membrane surface. Moore et al. (1974) observed an ATP-dependent Ca2+ uptake distinct from that of the mitochondria in a crude fraction of renal plasma membranes as well as in rat renal microsomes. The two uptake systems differed in their capacity, their sensitivity to Na+ and their apparent Km values for Mg2+-ATP.

Experiments are described on the Ca2+ transport into brush-border-membrane vesicles and basal-lateral plasma-membrane vesicles isolated from rat renal cortex. The results show that a primary active ATP-driven Ca2+ pump and an Na+/Ca2+-exchange system are present in the basal-lateral plasma membranes, but not in the brush-border membrane.

These findings indicate that trans-epithelial Ca2+ transport in rat proximal tubule can be

  1. primarily active via the ATP-driven system as well as
  2. secondarily active if the Na+/Ca2+ exchange system is involved.

It appears that the Na+/Ca2+ exchange system

  • is responsible for the bulk flow of Ca2+ across the epithelium, whereas
  • the ATP-driven system might be involved in the fine regulation of the concentration of intracellular Ca2+.

(Gmaj P, Murer  H, and Kinne R. 1979)

The Renal Na+/Ca2+ Exchange System of the Nephron

The movement of Ca2+ across the basolateral plasma membrane was studied from rabbit proximal and distal convoluted tubules and ATP-dependent Ca2+ uptake was found in both. But the activity was higher distal.  The distal tubular membranes had a very active Na+/Ca2+ exchange system, which was absent in the proximal segment. The ATP-dependent Ca2+ uptake in the distal tubular membrane preparations was gradually inhibited by Na+ outside the vesicles, and was a function of the imposed Na+ gradient.  The results indicate that an active Na+/Ca2+ exchange system is absent in the proximal tubule. Ramachandram & Brunette, 1989).  Parathyroid hormone (PTH) and calcitonin increase Ca2+ uptake by purified distal tubular luminal membranes (DTLM), and both hormone stimulate adenylate cyclase and phospholipase C.  Therefore, distal tubules were incubated with dibutyryl cAMP (dbcAMP) and the result was that dbcAMP increased the Ca2+ transport by luminal membranes, but phorbol 12-myristate 13 acetate (PMA) had no such effect. But when PMA was added to low concentrations of dbcAMP the uptake significantly increased. Protein kinase C inhibitors prevented the effect. This indicated that in the distal tubule Ca2+ transport required both the combined effect of PK  A and C involves both components of the transport kinetics.  (Hila, Claveau, Laclerc, Brunette, 1997)

In the rabbit, calcitonin enhances Ca2+ reabsorption in the distal tubule.  Tubules were incubated with or in the absence of calcitonin, and the luminal or basolateral membranes were purified and Ca2+ transport was measured through the vesicles.  The results were compared with those obtained from proximal tubule membranes, and the results were no effect of calcitonin on Ca2+ uptake in the proximal tubules.  In the distal tubules there was the expected uptake, but the presence of Na+ in the suspension decreased the Ca2+ uptake.  The uptake was partially restored by preincubation with calcitonin.  Recall the experiment demonstrating a requirement for PK A and C in Ca2+ uptake indicating a dual kinetics of Ca2+ uptake by the distal luminal membranes.  Calcitonin enhanced Ca2+ transport by the low affinity component, increasing the Vmax and leaving the K(m) unchanged. Renal calcitonin receptors usually couple to both adenylate cyclase and phospholipase C.  Calcitonin stimulates cAMP and IP3 release. Incubation of the distal tubules with 10(-7) M calcitonin significantly increased both messengers. In contrast, calcitonin did not influence the IP3 nor the cAMP content of proximal tubules.  Incubation of distal tubule suspensions with dbcAMP significantly increased Ca2+ uptake by the luminal membranes. However, incubation of these tubules with various concentrations of PMA (10 nM, 100 nM and 1 microM) had no effect on this uptake.  Calcitonin also influenced Ca2+ transport by the distal basolateral membrane. Incubation of distal tubule suspensions with 10(-7) M calcitonin activated the Na+/Ca2+ exchanger activity, almost doubling the Na+ dependent Ca2+ uptake. Here again this action was mimicked by cAMP. The researchers concluded that calcitonin increases Ca2+ transport by the distal tubule through two mechanisms:

  1. the opening of low affinity Ca2+ channels in the luminal membrane and
  2. the stimulation of the Na+/Ca2+ exchanger in the basolateral membrane, both actions depending on the activation of adenylate cyclase.
    (Zuo Q, Claveau D, Hilal G, Leclerc M, Brunette MG. 1997)

Calcium (Ca2+) filtered in the glomerulus is reabsorbed by the luminal membrane of the proximal and distal nephron. Ca2+ enters cells across apical plasma membranes along a steep electrochemical gradient, through Ca2+ channels. Regulation by hormones requires

  1. binding of these hormones to the basolateral membrane,
  2. interaction with G proteins,
  3. liberation of messengers,
  4. activation of kinases
  5. opening of the channels at the opposite pole of the cells.

It follows that if the Ca2+ entry through the luminal membranes of proximal and distal tubules is a membrane-limited process, then G proteins have a regulatory role. Luminal membranes were purified from rabbit proximal and distal tubule suspensions, and their vesicles were loaded with GTPγs or the carrier. Then, the 45Ca2+ uptake by these membrane vesicles was measured in the presence and absence of 100 mM NaCl. In the absence of Na+, intravesicular GTPγs significantly enhanced 0.5 mM Ca2+ uptake by the proximal membrane vesicles (p < 0.05). In the presence of Na+, however, this effect disappeared. In the distal tubules, intravesicular GTPγs increased 0.5 mM Ca2+ uptake in the absence (p < 0.02) and in the presence (p < 0.02) of Na+. The action of GTPγs, when present, was dose dependent. The distal luminal membrane is the site of two Ca2+ channels with different kinetics parameters. GTPγs increased the Vmax value of the low-affinity component exclusively, in the presence as in the absence of Na+. Finally, Ca2+ uptake by the membranes of the two segments was differently influenced by toxins: cholera toxin slightly stimulated transport by the proximal membrane, but had no influence on the distal membrane, whereas pertussis toxin decreased the cation uptake by the distal tubule membrane exclusively. We conclude that the nature of Ca2+ channels differs in the proximal and distal luminal membranes: Ca2+ channels present in the proximal tubule and the low-affinity Ca2+ channels present in the distal tubule membranes are directly regulated by Gs and Gi proteins respectively, whereas the high-affinity Ca2+ channel in the distal tubule membrane is insensitive to any of them.
(Brunette MG, Hilal G, Mailloux J, Leclerc M. 2000)

We previously reported a dual kinetics of Ca2+ transport by the distal tubule luminal membrane of the kidney, suggesting the presence of several types of channels. We, therefore, examined the effects of specific inhibitors (i.e., diltiazem, an L-type channel; ω-conotoxin MVIIC, a P/Q-type channel; and mibefradil, a T-type channel antagonist) on Ca2+ uptake by rabbit nephron luminal membranes. None of these inhibitors influenced Ca2+ uptake by the proximal tubule membranes. In contrast, in the absence of sodium (Na+), the three channel antagonists decreased Ca2+ transport by the distal membranes, and their action depended on the substrate concentrations: (P < 0.05) without influencing 0.5 mM Ca2+ transport, whereas ω-conotoxin MVIIC decreased 0.5 mM Ca2+ (P < 0.02) and 1 µM mibefradil decreased it (P < 0.05); the latter two inhibitors [P/Q type, T-type] left 0.1 mM Ca2+ transport unchanged. Diltiazem [L-type] decreased the Vmax of the high-channels, whereas ω-conotoxin MVIIC and mibefradil influenced exclusively the Vmax of the low-affinity channels. These results not only confirm that the distal luminal membrane is the site of Ca2+ channels, but they suggest that these channels belong to the L, P/Q, and T types. (M G Brunette, M Leclerc, D Couchourel, J Mailloux, Y Bourgeois. 2000)

Calcium (Ca2+) transport by the distal tubule (DT) luminal membrane

Calcium (Ca2+) transport by the distal tubule (DT) luminal membrane is regulated by

  • the parathyroid hormone (PTH) and calcitonin (CT) through the action of messengers,
  • protein kinases, and
  • ATP as the phosphate donor.

Could ATP itself, when directly applied to the cytosolic surface of the membrane influence the Ca2+ channels previously detected in this membrane. We purified the luminal membranes of rabbit proximal (PT) and DT separately and measured Ca2+ uptake by these vesicles loaded with ATP or the carrier. The presence of 100 μM ATP in the DT membrane vesicles significantly enhanced 0.5 mM Ca2+ uptake           in the absence of Na+ (P < 0.01) and in the presence of 100 mM Na+ (P < 0.01). This effect was dose dependent with an EC50 value of approximately 40 μM. ATP action involved the high-affinity component of Ca2+ transport, decreasing the Km from 0.08 ± 0.01 to 0.04 ± 0.01 mM (P< 0.02). Replacement of the nucleotide by the nonhydrolyzable ATPγs abolished this action. Because ATP has been reported to be necessary for cytoskeleton integrity, they investigated the effect of intravesicular cytochalasin on Ca2+ transport. Cytochalasin B decreased 0.5 mM Ca2+ uptake (P< 0.01). However, when both ATP and cytochalasin were present in the vesicles, the uptake was not different from that observed with ATP alone. Neither ATP nor cytochalasin had any influence on Ca2+ uptake by the PT luminal membrane. They conclude from this that the high-affinity Ca2+ channel of the DT luminal membrane is regulated by ATP and that ATP plays a crucial role in the integrity of the cytoskeleton which is also involved in the control of Ca2+ channels within this membrane. (MG. Brunette*, J Mailloux, G Hilal. 1999)

Proximal tubular sodium-calcium exchanger

The functional expression of the renal sodium-calcium exchanger has been amply documented in studies on renal cortical basolateral membranes. In perfused renal tubules, other investigators have shown sodium-calcium exchange activity in the

  • proximal convolution
  • in the distal convolution,
  • the connecting tubule, and
  • the collecting tubule of the rabbit.

In rat proximal tubules, we found that the sodium-calcium exchanger is an important determinant of cytosolic calcium homeostasis, since

  • inhibition of sodium-dependent calcium efflux mode caused a large accumulation of tubular calcium.

In membranes from rat proximal tubules sodium-calcium activity was high, and in intact proximal tubules,

  • the tubular sodium-calcium exchanger exhibited a high affinity for cytosolic calcium

and had a substantial transport capacity, which may be absolute requirements for the maintenance of stable cytosolic calcium in proximal tubules. (Dominguez JH, Juhaszova M, Feister HA. 1992.)

Proximal tubule Na(+)-Ca2+ exchanger protein is same as the cardiac protein

The activity of the Na(+)-Ca2+ exchanger, a membrane transporter that mediates Ca2+ efflux, has been described in amphibian and mammalian renal proximal tubules. However, demonstration of cell-specific

  • expression of the Na(+)-Ca2+ exchanger in proximal renal tubules has been restricted to functional assays.

In this work, Na(+)-Ca2+ exchanger gene expression in rat proximal tubules was characterized by three additional criteria:

  1. functional assay of transport activity in membrane vesicles derived from proximal tubules, expression of
  2. specific Na(+)-Ca2+ exchanger protein detected on Western blots, and
  3. determination of specific mRNA encoding Na(+)-Ca2+ exchanger protein on Northern blots.

A new transport activity assay showed that proximal tubule membranes

  • contained the highest Na(+)-Ca2+ exchanger transport activity reported in renal tissues.

In dog renal proximal tubules and sarcolemma, a specific protein of approximately 70 kDa was detected, whereas in rat proximal tubules and sarcolemma, the specific protein approximated 65 kDa and was localized to the basolateral membrane. On Northern blots, a single 7-kb transcript isolated from rat

  • proximal tubules,
  • whole kidney, and
  • heart

hybridized with rat heart cDNA.

These data indicate that Na(+)-Ca2+ exchanger protein expressed in rat proximal tubule is similar, if not identical, to the cardiac protein. We suggest that the tubular Na(+)-Ca2+ exchanger characterized herein represents the Na(+)-Ca2+ exchanger described in functional assays of renal proximal tubules. (Dominguez JH, Juhaszova M, Kleiboeker SB, Hale CC, Feister HA. 1992.)

Calcium reabsorption regulated by the distal tubules

Extracellular calcium homeostasis involves coordinated calcium absorption by

  1. the intestine,
  2. calcium resorption from bone, and
  3. calcium reabsorption by the kidney.

This review addresses the mechanism and regulation of renal calcium transport. Calcium reabsorption occurs throughout the nephron. However, distal tubules are the nephron site at which calcium reabsorption is regulated by

  1. parathyroid hormone,
  2. calcitonin, and
  3. 1 alpha,25-dihydroxyvitamin D3 and

where the magnitude of net reabsorption is largely determined. These and related observations underscore the view that distal tubules are highly specialized

  • to permit fine regulation of calcium excretion in response to
  • alterations in extracellular calcium levels.

Progress in understanding the mechanism and regulation of calcium transport has emerged from application of

  • single cell fluorescence,
  • patch clamp, and
  • molecular biological approaches.

These techniques permit the examination of

  1. ion transport at the cellular level and
  2.  its regulation at subcellular and molecular levels.

This editorial review focuses on recent and emerging observations and attempts to integrate them into models of cellular calcium transport. (Friedman PA , Gesek FA.  1993)

Calcium-Sensing Receptor (CSR)

Renal tubular calcium reabsorption is a critical determinant of extracellular fluid (ECF) calcium concentration; for the need of constancy of ECF calcium concentration,

  • the renal tubular handling of calcium is tightly controlled
  • in order to match renal calcium excretion to the net amount of calcium entering the ECF.

Both parathyroid hormone (PTH) and vitamin D metabolites are involved in

  1. the control of renal tubular calcium reabsorption and
  2. ECF calcium concentration [1].

Besides this hormonal control, it has been recognized recently that

  • ECF calcium is able to regulate its own reabsorption by the mammalian tubule.

Indeed, a large body of evidence supports the view that ECF calcium exerts this action

  • by activating the calcium/polyvalent cation-sensing receptor (CaSR)
  • located in the plasma membrane of many tubular cell types.

First, increasing ECF calcium concentration

  • elicits a marked increase in urinary calcium (and magnesium) excretion [2,3] and
  • this occurs independently of any change in the calcium-regulating hormones [2,3].

Second, the inhibitory effect of ECF calcium on its own reabsorption is shared by other CaSR agonists, e.g. magnesium [4].

Third, the relationship between ECF calcium and urinary calcium excretion

is altered in patients bearing mutations of the CASR gene: renal tubular calcium reabsorption

  • is enhanced in patients with inactivating mutations [5,6]
  • and decreased in patients with activating mutations.

Therefore, there is abundant evidence that renal tubular CaSR plays a role

  • in the control of divalent cations reabsorption under
  • both normal and pathological conditions.

Localization of the extracellular CaSR

Transcripts of the CASR gene are expressed in many nephron segments of rat kidney, extending from glomeruli to the inner medullary collecting duct (IMCD) [7]. The CaSR protein is expressed in

  • the proximal tubule,
  • medullary and cortical thick ascending limb (TAL) segments,
  • macula densa cells,
  • distal convoluted tubule (DCT) and
  • type-A intercalated cells in the distal tubule and cortical collecting duct [8]
  • and in inner medullary collecting duct cells [9].

The polarity of expression varies from segment to segment, the protein being expressed in

  • the apical membrane of proximal tubule and
  • IMCD cells and
  • in the basolateral membrane of TAL and DCT cells [8,9].

Interestingly, the highest density of protein expression has been observed in the cortical TAL (cTAL),

  • known to reabsorb calcium and magnesium in a regulated manner.

CaSR under physiological conditions

Consistent with its polarized plasma membrane localization,

  • CaSR has been shown to be involved in the control of thick ascending limb (TAL) calcium and magnesium reabsorption.

In the mouse and rat TAL,

  • both calcium and magnesium are reabsorbed selectively in the cortical portion (cTAL) [10]
  • and this reabsorption is passive along an electrical gradient

through the paracellular pathway [10,11]. The electrical gradient is related to

  • transcellular NaCl reabsorption.

The first step is NaCl entry into the cell via

  • the electroneutral apical Na- K-2Cl co-transporter BSC1 (NKCC2).

Subsequently, most of the potassium recycles back to the lumen, through an apical potassium channel,

  • necessary to maintain NaCl absorption via BSC1 (NKCC2).

In the absence of recycling, NaCl absorption is inhibited because of

  • the low availability of potassium in luminal fluid.

In addition, potassium recycling hyperpolarizes the apical membrane.

Chloride exits the cell

  • across the basolateral membrane
  • mainly via the CLC-Kb channel,
  • which depolarizes the basolateral membrane.

The overall consequence is a lumen-positive transepithelial voltage that

  • drives calcium, magnesium and also sodium through the paracellular pathway.

The pathway permeability for calcium and magnesium requires the presence of a specific protein,

  • paracellin-1 (also known as claudin-16),
  • co-expressed with occludin
    • in the tight junctions of thick ascending limb (TAL) [12].

Inactivating mutations of the paracellin-1 gene cause a specific

  1. decrease in cTAL calcium and magnesium reabsorption and
  2. renal loss of both cations without renal sodium loss,

which is the landmark of an inherited disease referred to as hypercalciuric hypomagnesaemia with nephrocalcinosis [4].

Calcium and magnesium reabsorption in the cTAL is tightly regulated. Micropuncture studies have shown that peptide hormones, such as

  • PTH,
  • arginine vasopressin,
  • calcitonin and
  • glucagon,

stimulate NaCl as well as calcium and magnesium reabsorption in the loop of Henle and decrease their excretion in final urine. PTH, the most important peptide hormone for the stimulation of renal calcium transport, elicits an increase in calcium and magnesium reabsorption cTAL.
Wittner et al. [14] demonstrated that PTH stimulation of calcium and magnesium transport

  • involves an increase in paracellular pathway permeability.

The activation of CaSR also affects a number of intracellular events in TAL cells and

  • modulates transport processes along the cTAL epithelium.

Activating CaSR increases intracellular free calcium concentration in

  • cTAL,
  • DCT and
  • cortical as well as
  • outer medullary collecting duct.

This also decreases hormone-dependent cAMP accumulation in cTAL by

  • inhibition of type-6 adenylyl cyclase [20],
  • increases inositol phosphate formation [21] and
  • elicits an increase in phospholipase A2 activity and
  • in intracellular cellular production of 20-hydroxyeicosatetraenoic acid [22].   ….

In conclusion, a large body of evidence supports the view that CaSR is

  • a major regulator of calcium and magnesium reabsorption in the cTAL and,
  • of overall tubular divalent cation handling.

However, several issues remain unresolved. It is still unclear whether CaSR activation in the cTAL decreases NaCl reabsorption in this segment or not. The mechanism through which CaSR activation could alter the function of paracellin-1 and the paracellular pathway permeability also remains unsettled. Finally, the role of CaSR in the medullary part of TAL should be investigated: a CaSR-dependent inhibition of NaCl reabsorption could explain at least part of the polyuria that accompanies hypercalcaemic states.   (P Houillier and M Paillar. 2003)

Alpha-Kloth and FGf23

Recent advances that have given rise to marked progress in clarifying actions of alpha(α)-Klotho (alpha-Kl) and FGf23 can be summarized as follows ;

(i) α-Kl binds to Na(+), K(+)-ATPase, and Na(+), K(+)-ATPase is recruited to the plasma membrane by a novel α-Kl dependent pathway in correlation with cleavage and secretion of α-Kl in response to extracellular Ca(2+) fluctuation.

(ii) The increased Na(+) gradient created by Na(+), K(+)-ATPase activity drives the transepithelial transport of Ca(2+) in the choroid plexus and the kidney, this is defective in α-kl(-/-) mice.

(iii) The regulated PTH secretion in the parathyroid glands is triggered via recruitment of Na(+), K(+)-ATPase to the cell surface in response to extracellular Ca(2+) concentrations.

(iv) α-Kl, in combination with FGF23, regulates the production of 1,25 (OH) (2)D in the kidney. In this pathway, α-Kl binds to FGF23, and α-Kl converts the canonical FGF receptor 1c to a specific receptor for FGF23, enabling the high affinity binding of FGF23 to the cell surface of the distal convoluted tubule where α-Kl is expressed.

(v) FGF23 signal down-regulates serum phosphate levels, due to decreased NaPi-IIa abundance in the apical membrane of the kidney proximal tubule cells.

(vi) α-Kl in urine increases TRPV5 channel abundance at the luminal cell surface by hydrolyzing the N-linked extracellular sugar residues of TRPV5, resulting in increased Ca(2+) influx from the lumen.

These findings revealed a comprehensive regulatory scheme of mineral homeostasis that is illustrated by the mutually regulated positive/negative feedback actions of α-Kl, FGF23, PTH and 1,25 (OH) (2)D. In this regard, α-Kl and FGF23 might play pivotal roles in mineral metabolism as regulators that integrate calcium and phosphate homeostasis, although this concept requires further verification in the light of related findings. Here, the unveiling of the molecular functions of α-Klotho and FGF23 has recently given new insight into the field of calcium and phosphate homeostasis. Unveiled molecular functions of α-Kl and FGF23 provided answers for several important questions regarding the mechanisms of calcium and phosphate homeostasis that remained to be solved, such as :

(i) what is the non-hormonal regulatory system that directly responds to the fluctuation of extracellular Ca(2+),
(ii) how is Na(+), K(+)-ATPase activity enhanced in response to low calcium stimuli in the parathyroid glands,
(iii) what is the exact role of FGF23 in calcium and phosphorus metabolism,
(iv) how is Ca(2+) influx through TRPV5 controlled in the DCT nephron, and finally
(v) how is calcium homeostasis regulated in cerebrospinal fluid. However, several critical questions still remain to be solved. So far reported,

  • α-Kl binds to Na(+),
  • K(+)-ATPase,
  • FGF receptors and FGF23, and
  • α-Kl hydrolyzes the sugar moieties of TRPV5.

The following questions are unresolved:

Does alpha-Kl recognize these proteins directly or indirectly?
Is there any common mechanism?
How can we reconcile such diverse functions of alpha-Kl?What is the Ca(2+) sensor machinery and how can we isolate it?
How do hypervitaminosis D and the subsequently altered mineral-ion balance lead to the multiple phenotypes?
What is the phosphate sensor machinery and how can we isolate it?
How does the Fgf23/α-Kl system regulate phosphorus homeostasis?
How are serum concentrations of Ca(2+) and phosphate mutually regulated?
(Nabeshima Y. 2008)

Cilium and Calcium Signal

We tested the hypothesis that the primary cilium of renal epithelia is mechanically sensitive and serves as a flow sensor in MDCK cells using differential interference contrast and fluorescence microscopy. Bending the cilium, either by suction with a micropipette or by increasing the flow rate of perfusate, causes intracellular calcium to substantially increase as indicated by the fluorescent indicator, Fluo-4. This calcium signal is initiated by Ca2+-influx through mechanically sensitive channels that probably reside in the cilium or its base. The influx is followed by calcium release from IP3-sensitive stores. The calcium signal then spreads as a wave from the perturbed cell to its neighbors by diffusion of a second messenger through gap junctions. This spreading of the calcium wave points to flow sensing as a coordinated event within the tissue, rather than an isolated phenomenon in a single cell. Measurement of the membrane potential difference by microelectrode during perfusate flow reveals a profound hyperpolarization during the period of elevated intracellular calcium. We conclude that the primary cilium in MDCK cells is mechanically sensitive and responds to flow by greatly increasing intracellular calcium.  (Praetorius HA, Spring KR. 2001)

Fgf23 regulation in chronic renal disease

The mechanism of FGF23 action in calcium/phosphorus metabolism of patients with chronic kidney disease (CKD) was studied using a mathematical model and clinical data in a public domain. We have previously built a physiological model that describes interactions of PTH, calcitriol, and FGF23 in mineral metabolism encompassing organs such as bone, intestine, kidney, and parathyroid glands. Since an elevated FGF23 level in serum is a characteristic symptom of CKD patients, we evaluate herein potential metabolic alterations in response to administration of a neutralizing antibody against FGF23. Using the parameters identified from available clinical data, we observed that a transient decrease in the FGF23 level elevated the serum concentrations of PTH, calcitriol, and phosphorus. The model also predicted that the administration reduced a urinary output of phosphorous. This model-based prediction indicated that the therapeutic reduction of FGF23 by the neutralizing antibody did not reduce phosphorus burden of CKD patients and decreased the urinary phosphorous excretion. Thus, the high FGF23 level in CKD patients was predicted to be a failure of FGF23-mediated phosphorous excretion. The results herein indicate that it is necessary to understand the mechanism in CKD in which the level of FGF23 is elevated without effectively regulating phosphorus.

A traditional, physiological model with PTH and calcitriol needs to be rebuilt in accordance with the emerging role of FGF23 and its interacting molecules. To understand probable interactions among FGF23, PTH and calcitriol, we previously developed a minimum physiological model of calcium/phosphorus metabolism and investigated potential influences of FGF23 on the observable state variables such as the serum concentrations of PTH, calcitriol, calcium (Ca), and phosphorous (P), as well as the urinary excretion of Ca and P.3 In this study, we extended the model and evaluated the mechanism of FGF23-mediated regulation in chronic kidney diseases (CKD).

The FGF23 gene was identified by its mutations associated with autosomal dominant hypophosphatemic rickets (ADHR), which is an inherited phosphate wasting disorder.4 Thereafter, a variety of disorders resulting from gain or loss of FGF23 bioactivity have been reported.5 These disorders, which are caused by mutations in the genes that directly or indirectly interact with FGF23, include hyperphosphatemic familial tumoral calcinosis (HFTC), hereditary hypo-phosphatemic rickets with hypercalciuria (HHRH), autosomal recessive hypophosphatemic rickets (ARHR), and X-linked dominant hypophosphatemic rickets (XLH, HYP). CKD patients who need dialysis have very high levels of FGF23 in serum that are linked with increased rates of death.6
We examined the effect of reduction of FGF23 by neutralizing antibody would modulate phosphorus balance of CKD patients. We evaluated the levels of physiological variables such as the levels of PTH, calcitriol, FGF23, Ca, and P in serum as well as urinary outputs of Ca and P using clinical data. Since a glomerular filtration rate (GFR) is a good indicator of severity of CKD, data were processed as a function of GFR. We then employed the previously developed mathematical model for mineral metabolism, and conducted numerical simulations in response to the modulation of FGF23 by neutralizing antibody.

Estimation of the relationship of the FGF23 level to other physiological variables

The FGF23 concentrations, reported in literature, considerably varied among available datasets, presumably caused by differential baseline levels or sensitivity variations among individual assays. To predict a quantitative relationship among the FGF23 level and other physiological variables, the reported FGF23 level was linearly modified:

[FGF23]AB = {[FGF23]-A}/B         (1)

in which [FGF23] = reported FGF23 level, [FGF23]AB = linearly modified FGF23 level, and A and B = two correction factors. Note that these correction factors are constant and they were chosen independently for each of the physiological variables such as the serum level of PTH and the urinary output of P. The “+” and “-” values of the factor B indicate positive and negative correlations to the FGF23 level, respectively. We applied the described modification in analyzing clinical data since the observed FGF23 variation was larger than others. Without this procedure, it was difficult to estimate a quantitative relationship of its concentrations to other variables.  [With the significant variation around the linear fit, it might well have been warranted to use the log transform of the modified level, LHB].

Mathematical model and prediction of effects of FGF23 antibody

We previously developed a pair of metabolism models of calcium and phosphorus with and without including the predicted action of FGF23.3,20 In this study we considered an additional state variable, GFRf, as a multiplicative term pertaining to the calcium and phosphorus renal thresholds and the kidney production of calcitriol:

GFRf = (GFR/GFR0)k       (2)

in which GFR0 and GFR = glomerular filtration rates in the control state and at any given degree of renal failure, respectively, and a factor k (>0) was chosen so as to fit the clinical data as described previously.7

To predict the effects of intravenous administration of a neutralizing antibody against FGF23, we numerically examined 5 different dosages for i.v. administration at 0.003, 0.01, 0.03, 0.1 and 0.3 mg/kg (dosage levels 1–5). These dosages corresponded to a clinical trial study being proposed for a dose-escalation study of KRN23 (Kyowa Hakko Kirin Pharma Inc.). A primary outcome measure of this Phase I clinical trial is a change in a serum phosphate level, and a single dose by intravenous or subcutaneous administration is planned. The initial target is X-linked hypophosphatemia but no clinical data regarding efficacy and side effects are available. To simulate a probable injection procedure, we assumed a form of a single, smoothed-out pulse. The rise in the antibody concentration was modeled using a Gaussian type diffusion profile with a period dependent on the distribution volume and cardiac output.

Glomerular filtration rate (GFR) as an indicator in cKD patients

We plotted physiological variables of CKD patients as a function of GFR in ml/min/1.73 m2. Figure 1 illustrated the levels of PTH (pg/ml), calcitriol (pg/ml), Ca (mg/dl), and P (mg/dl) in serum as well as urinary outputs of Ca and P expressed as a fraction of the glomerular loads. The numbers in the brackets in Figure 1 were the numbers of patients. The average and SEM values were obtained in each of the sampling bins. As GFR was normal above 90, the levels of PTH and P in serum as well as the fractions of urinary Ca and P outputs were lowered. On the contrary, the level of calcitriol in serum was higher as GFR increased.

Estimation of FGF23 levels in serum in cKD patients

The relationships of the linearly modified FGF23 concentration in serum, [FGF23]AB, to the selected physiological variables in CKD patients were illustrated in Figure 2. First, a strong correlation was observed between log.e(GFR) and a negative form of log.e[FGF23]AB, indicating that the FGF23 level was sharply elevated in CKD patients with reduction in GFR. Second, an increase in [FGF23]AB was correlated to the levels of PTH, calcitriol, P in serum, and the renal threshold for P. Note that a positive correlation (i.e. B > 0) was observed for the levels of PTH and P in serum, while a negative correlation (i.e. B < 0) for the serum level of calcitriol and the renal threshold for P. Note that a majority of data points had the PTH level above 50 pg/ml, indicating a poor balance of mineral metabolism in CKD patients.

 Linkage of FGF23 and P levels in serum

In all groups, a positive correction was observed between the level of P and the modified level of FGF23 in serum. Note that CKD data in Figure 2D showed the elevated P level up to 6 mg/dl, while the higher bound of the P level was ∼2 mg/dl (Tumor Induced Osteomalacia), 3.5 ∼4 mg/dl (Fibrous Dysplasia and XLH), and 4.5 mg/dl (healthy populations).

Predicted effects of the antibody specific to FGF23

Although the observed increase of FGF23 in CKD is apparently a physiological response to hyperphos-phatemia, the use of FGF23 antibody is suggested for transplanted hypophosphatemic patients of CKD with a high level of FGF23.21 In response to intravenous administration of the antibody specific to FGF23, we evaluated the predicted changes in the serum levels of PTH, calcitriol, and P as well as a normalized urinary output of P.  The results were positive.
(Yokota H, Pires A, Raposa JF, Ferreira HG. 2010.)

Overview of renal Ca2+ handling

About 50% of plasma calcium (ionized and complexed form; ultrafilterable fraction, excluding the protein bound form) is freely filtered through the renal glomerulus, and 99% of the filtered calcium is actually reabsorbed along renal tubules (Table 1- see Fig below on right)). The excreted calcium in the final urine is about 200 mg per day in an adult person with an average diet. Several factors are involved in the regulation of calcium in renal tubules. PTH and activated vitamin D enhance calcium reabsorption in the thick ascending limb (TAL), distal convoluted tubule (DCT) and/or connecting tubule (CNT).

Acidosis contributes to hypercalciuria by reducing calcium reabsorption in the proximal tubule (PT) and DCT, and alkalosis vice versa3). Diuretics like thiazide and furosemide also alter calcium absorption in the renal tubules; thiazide promotes calcium reabsorption and furosemide inhibits it. Plasma calcium itself also controls renal calcium absorption through altered PTH secretion as well as via binding to the calcium sensing receptor (CaSR) in the TAL.

To facilitate Ca2+ reabsorption along renal tubules;

(i) voltage difference between the lumen and blood compartment should be favorable for Ca2+ passage, i.e., a positive voltage in the lumen;
(ii) concentration difference should be favorable for Ca2+ passage with a higher Ca2+ concentration in the lumen;
(iii) an active transporter should exist if the voltage or concentration difference is not favorable for Ca2+ reabsorption. Each renal tubular segment has a different Ca2+ concentration difference or voltage environment for its unique mechanism for calcium re-absorption.

Calcium handling along the tubules

Fifty to sixty percent of filtered calcium is absorbed in parallel with sodium and water in the PT, suggesting that the passive pathway is the main route of Ca2+ absorption in this segment. Claudin-2 is especially concentrated in the tight junction and also expressed in the basolateral membrane of the PT as the candidate for paracellular Ca2+ channel in the PT. There is no evidence that Ca2+ reabsorption occurs in the thin descending and ascending limb. In the TAL, 15% of filtered calcium is absorbed, and the passive absorption through paracellular space is known as the main mechanism (Fig. 1). Paracellin-1 (claudin-16) is exclusively expressed in the tight junction of TAL and has been known as the important magnesium channel in the TAL. Paracellin-1 mutation caused hypercalciuria and nephrocalcinosis in addition to hypomagnesemia. This finding supports that paracellin-1 is not only the main Mg2+ channel, but also works as the paracellular Ca2+ channel in the TAL. There are some evidences that active transport occurs in the TAL, but no specific channel has yet been identified). The CaSR is a member of G protein-coupled receptors and suppresses PTH secretion by sensing high plasma Ca2+ level in the parathyroid glands). In the kidney, the CaSR is most highly expressed in the TAL..
Although only 10-15% of filtered Ca2+ is absorbed in the DCT and CNT, these are the main sites in which the fine regulation of Ca2+ excretion and the major action of PTH and activated vitamin D occur. In the DCT and CNT, the luminal voltage is negative and Ca2+ concentration in the lumen is lower than that of plasma. Thus, active transport mechanism against voltage and concentration gradient should exist in these segments. Several Ca2+ transporting proteins are involved in this active transmembrane transport of Ca2+ in the DCT and CNT. Transcellular Ca2+ re-absorption can occur by three steps;
(i) entry of Ca2+ through the calcium channels (TRPV5, TRPV6) in the apical membrane,
(ii) binding of Ca2+ with calcium-binding protein (calbindin) and diffusion in the cytoplasm (which enables no significant change in the intracellular i[Ca2+], and
(iii) Ca2+ extrusion via an ATP-dependent plasma membrane Ca2+-ATPase (PMCA1b) and an Na2+/Ca2+ exchanger (NCX1) in the basolateral membrane (see Fig below on right).
  • In the collecting duct (CD), there is no evidence that Ca2+ reabsorption occurs even though calcium channel (TRPV6) was documented to be expressed in CD cells.
  • Each renal tubule has a unique environment and plays a different role in Ca2+ reabsorption.
  • The coordinated play of different renal tubules could maintain harmony of renal Ca2+ handling.

Transient receptor potential (TRP) channel is a super-family of ion channels permeable to monovalent and/or divalent cations with six-transmembrane domains. The mammalian TRP family consists of six subfamilies like TRPC (canonical), TRPV (vanilloid), TRPM (melastatin), TRPP (polycystin), TRPML (mucolipin), and TRPA (ankyrin). TRPV is one of them and consists of six members in mammalians; TRPV1 to TRPV6. TRPV5 (previously known as ECaC1) and TRPV6 (ECaC2), both cloned in 1999, have characteristics distinguished from other TRPV channels; (i) constitutively active at low intracellular Ca2+ concentration, and (ii) exclusively selective for Ca2+ (PCa/PNa >100)9). TRPV5 and TRPV6 have the highest sequence homology (~730 amino acids, amino-terminal ankyrin repeats, TM5 and TM6 each forming the pore-region composed with tetramer, on human chromosome 7q34-35) (Fig. 3a). TRPV5 is exclusively expressed in the DCT and CNT in the kidney10) (Fig. 3b). On the contrary, TRPV6 is more ubiquitously distributed, especially in the intestine, and also found from the DCT to the CD in the kidney11) (Fig. 3b). Both TRPV5 and TRPV6 are located in the apical plasma membrane of the tubular epithelium, and serve as the entrance of Ca2+ from the lumen into the cytoplasm. TRPV5 knockout mice exhibited severe hypercalciuria (more than 6 times of wild type mouse) and low bone densities, but without hypocalcemia due to the compensatory elevation of activated vitamin D, clearly demonstrating that TRPV5 plays a crucial role in renal calcium reabsorption12). TRPV6 knockout mice also showed significant hypercalciuria and bone disease13). Even though TRPV5 and TRPV6 knockout mice showed congenital hypercalciuria, the mutation of the proteins has not been found in the human. Until now, TRPV5 is known
as the main entry of Ca2+ in renal tubular epithelial cells in the DCT and CNT, and TRPV6 is also known to contribute to renal Ca2+ reabsorption in the distal nephron.
Several factors (PTH, 1,25(OH)2D3, calcitonin, estrogen, i[Ca2+], acid-base status, klotho, diuretics, and im-munosuppressive drugs, etc) are involved in the regulation of both TRPV5 and TRPV610) (Table 2). Alteration of TRPV5 and TRPV6 by these factors contributes in disturbance of calcium metabolism: dyscalcemia, hypo- and hypercalciuria. 1,25(OH)2D3-depleted rats showed decreased expression of TRPV5 and calbindin-D28K mRNA and protein, and repletion of the hormone restored the expression of them.

TRPV

Transient receptor potential (TRP) channel is a super-family of ion channels permeable to monovalent and/or divalent cations with six-transmembrane domains. The mammalian TRP family consists of six subfamilies like TRPC (canonical), TRPV (vanilloid), TRPM (melastatin), TRPP (polycystin), TRPML (mucolipin), and TRPA (ankyrin). TRPV is one of them and consists of six members in mammalians; TRPV1 to TRPV6. TRPV5 (previously known as ECaC1) and TRPV6 (ECaC2), both cloned in 1999, have characteristics distinguished from other TRPV channels;
(i) constitutively active at low intracellular Ca2+ concentration, and
(ii) exclusively selective for Ca2+ (PCa/PNa >100)9). TRPV5 and TRPV6 have the highest sequence homology (~730 amino acids, amino-terminal ankyrin repeats, TM5 and TM6 each forming the pore-region composed with tetramer, on human chromosome 7q34-35). TRPV5 is exclusively expressed in the DCT and CNT in the kidney.
  • On the contrary, TRPV6 is more ubiquitously distributed, especially in the intestine, and also found from the DCT to the CD in the kidney
  • Both TRPV5 and TRPV6 are located in the apical plasma membrane of the tubular epithelium, and serve as the entrance of Ca2+ from the lumen into the cytoplasm.
TRPV5 knockout mice exhibited severe hypercalciuria (more than 6 times of wild type mouse) and low bone densities, but without hypocalcemia due to the compensatory elevation of activated vitamin D, clearly demonstrating that TRPV5 plays a crucial role in renal calcium reabsorption. TRPV6 knockout mice also showed significant hypercalciuria and bone disease. Even though TRPV5 and TRPV6 knockout mice showed congenital hypercalciuria, the mutation of the proteins has not been found in the human. Until now, TRPV5 is known as the main entry of Ca2+ in renal tubular epithelial cells in the DCT and CNT, and TRPV6 is also known to contribute to renal Ca2+ reabsorption in the distal nephron.
Several factors (PTH, 1,25(OH)2D3, calcitonin, estrogen, i[Ca2+], acid-base status, klotho, diuretics, and im-munosuppressive drugs, etc) are involved in the regulation of both TRPV5 and TRPV6. Alteration of TRPV5 and TRPV6 by these factors contributes in disturbance of calcium metabolism: dyscalcemia, hypo- and hypercalciuria. 1,25(OH)2D3-depleted rats showed decreased expression of TRPV5 and calbindin-D28K mRNA and protein, and repletion of the hormone restored the expression of them.
Table . The regulation of calcium transporting proteins in the DCT and CNT
Factors TRPV5  TRPV6  Calbindin- Mechanisms

D28K

PTH + NC + transcription
Vit D + + + transcription
Estrogen + + + transcription
Low Ca2+ diet + + NC transcription
Acidosis ND transcription
Thiazide C ND C transcription
Furosemide + + + transcription
Tacrolimus ND transcription
[Ca2+] Channel activity
Calbindin-D28K + NC Channel activity
Klotho + + ND trafficking

FGF23

FGF23, a member of the FGF family (type I trans-membrane phosphotyrosine kinase receptors), is a 30 kDa secreted protein and inactivated by cleavage into two smaller fragments (N-terminal 18 kDa fragment and C-terminal 12 kDa fragment) by a pro-convertase enzyme, furin . It was first cloned as the candidate gene for autosomal dominant hypophosphatemic rickets (ADHR). FGF23 is primarily expressed in the osteoblasts and osteocytes. Because Fgf23 knockout mice showed very similar phenotype to Klotho knockout mice including severe hyperphophatemia and osteoporosis, and gain of function mutation of Fgf23 gene was observed in ADHR patients. The main studies about the role of FGF23 in the kidney have focused on phosphate metabolism rather than calcium metabolism.

It is unknown how the FGF23:klotho complex from the DCT acts in the PT because the main action site of FGF23 in the kidney is the PT, whereas the FGF23:klotho complex is most abundant in the DCT. Both overexpression and deficiency of FGF23 cause several clinical diseases including ADHR and HFTC (hyperphosphatemic familial tumorial calcino-sis). Recently, FGF23 was suggested as a potential bio-marker for management of phosphate balance in chronic kidney disease (CKD) patients because the circulating FGF23 level was higher in CKD patients than healthy controls and the increased FGF23 level was an independent risk factor for higher mortality among dialysis patients26). FGF23 also plays some roles in the parathyroid glands and other organs like the choroid plexus, pituitary gland, and bone. However, further studies are needed to clarify the roles and the mechanisms.

Conclusion

The kidney has been known as the central organ for calcium homeostasis through fine regulation of renal calcium excretion. For the past decade, there has been big progress in the understanding of the roles of the kidney in calcium homeostasis. The identification of calcium transport proteins and the molecular approach to the regulatory mechanisms achieved a major contribution to this progress. TRPV5, TRPV6, calbindin-D28K, NCX1, and PMCA1b have been identified as the main calcium transport proteins in the distal nephron. PTH, vitamin D, i[Ca2+], CaSR, and other various conditions control renal calcium excretion through the regulation of these transport proteins. Klotho and FGF23 emerged as new players in calcium metabolism in the kidney. Thus, the role of the klotho-FGF23 axis in the regulatory mechanisms of calcium transport needs to be addressed.

Disorders of Calcium, Phosphorus and Magnesium Metabolism

Infrequently patients might present in the outpatient settings with non-specific symptoms that might be due to abnormalities of divalent cation (magnesium, calcium) or phosphorous metabolism. Several inherited disorders have been identified that result in renal or intestinal wasting of these elements. Physicians need to have a thorough understanding of the mechanism of calcium, magnesium and phosphorous metabolism and diagnoses disorders due to excess or deficiency of these elements. Prompt identification and treatment of the underlying disorders result in prevention of serious morbidity and mortality.

Maintenance of serum calcium in the extra cellular fluid space (ECF) is tightly regulated. Most calcium (around 99%) is bound and complexed in the bones. Calcium in the ECF is found in three fractions, of which 45% is in biological ionized fraction, 45% is protein bound and not filterable in the kidney and 10% is complexed with anions such as bicarbonate, citrate, phosphate, and lactate (Fig. 1 ). Most of the protein bound calcium is complexed with albumin, and a smaller amount to globulin. Each 1 g/dL of albumin binds 0.8 mg/dL (0.2 mmol/L) calcium. Hence, for each 1g/ dl decrease in serum albumin below normal value of 4.0 g/dl, one needs to add 0.8 mg/ dl to the measured serum calcium. Levels of calcium are also influenced by acid-base status, with acidosis increasing serum calcium while alkalosis decreases serum calcium levels.

Maintenance of normal calcium in ECF is dependent on fluxes of calcium between the intestine, kidneys and bone. The regulation of calcium in serum is regulated by calcium itself, through a calcium sensing receptor (Ca RG) and hormones like parathormone (PTH) and 1, 25-dihydroxyvitamin D3.

Calcium transport across the intestine occurs in two directions, absorption and secretion. The factors that influence calcium absorption in the intestine include daily amount of calcium that is ingested and 1, 25-dihydroxyvitamin D3 that binds to and activates the Vitamin D receptor (VDR) and induces the expression of calcium channel TRPV6, calbindin- D9K, and Ca2+ – ATPase. Other hormones like PTH, estrogen, prolactin and growth hormone may play a minor role in calcium absorption. Conditions that result in decreased intestinal calcium transport include high vegetable fiber and fat content of food, corticosteroid deficiency, estrogen deficiency, advanced age, gastrectomy, intestinal malabsorption, diabetes mellitus, renal failure and low Ca2+ phosphate ratio in the food.

PTH and 1, 25- dihydroxyvitamin D3 stimulate osteoclasts in bones and promote release of calcium in ECF. PTH promotes hydroxylation of 25(OH) D3 to 1, 25(OH) D3 and distal tubular calcium reabsorption.

Hypocalcaemia occurs when the loss of calcium from the ECF via renal excretion is greater than influx of Ca 2+ from intestine or bones. One of the commonest cause of low calcium is hypoalbuminemia, though the level of ionized Ca2+ is normal. The causes of hypocalcaemia is summarized in Table 1 . Acute hypocalcaemia is often seen in acute respiratory alkalosis due to hyperventilation. Idiopathic or acquired (post surgery, radiotherapy) hypoparathyroid states are usually accompanied with elevated phosphate level. Pseudo hypoparathyroidism is characterized by short neck, round face and short metacarpal and results from end-organ resistance to PTH. Chronic kidney disease and massive phosphate administration can result in hypocalcaemia with high serum phosphate levels. Familial hypocalcaemia is linked with activating mutation of Ca RG.  Hypocalcaemia with low phosphate levels occur in Vitamin D deficiency, resistance to calcitriol (Type 2 vitamin D- dependent rickets) acute pancreatitis and magnesium deficiency.

Table 1 : Causes of Hypocalcemia
Idiopathic Hypoparathyroidism
Post parathyroidectomy (Hungry bones syndrome)
Pseudo-hypoparathyroidism
Familial hypocalcemia
Rapid correction of severe acidosis with dialysis
Acute respiratory and metabolic alkalosis
Acute pancreatitis
Rhabdomyolysis
Hypomagnesemia
Septic shock
Ethylene glycol toxicity
Vitamin D deficiency
Chronic kidney disease
Massive transfusion- Citrate toxicity

Hypercalcemia occurs when in influx of calcium into the ECF exceeds the efflux of calcium from intestine and kidneys. The normal calcium level ranges from 8.9- 10.1 mg/ dL. The range of serum calcium levels in mild hypercalcemia is (10.1- 12.0 mg/dL), moderate hypercalcemia (12.0 – 14.0 mg/dl) and severe hypercalcemia > 14.0 mg/ dL respectively. The various causes of hypercalcemia is depicted in Table 2. Mutation of the gene for Ca RG results in hypercalcemia in few cases.

Table 2. : Causes of hypercalcemia
Parathormone             Primary hyperparathyroidism
(PTH) mediated           Lithium induced
Familial hypocalciuric hypercalcemia
Tertiary hyperparathyroidism
Cancer                          Multiple myeloma
PTHrp mediated-Breast, lung,
Exogenous Vitamin D
Dialysis patients (exogenous Vit D)
Other causes               Vitamin A toxicity
Thyrotoxicosis
Paget’s disease
Adrenal insufficiency
Thiazide use

Deficiency of calcium, magnesium and phosphorous are common in general practice. A thorough understanding of pathophysiology of these elements, common dietary sources of these elements and pharmacological measures that might be necessary to correct these deficiencies could guide the physician to make an accurate diagnosis, initiate appropriate treatment and prevent future recurrences.  (Ghosh AK*, Joshi SR. 2008.)

Renal Disease and the Cardiovascular System

Cardiovascular disease is a leading cause of death among patients with end stage renal failure. Animal models have played a crucial role in teasing apart the complex pathological processes involved. In addition to the anatomical and histological characteristics humans share with other species, human diseases can be reproduced in these species using pharmacological, surgical or genetic manipulation. Experimentation still provides the best evidence for disease causation, and only with this evidence can clinical science proceed to developing treatments. However, experimentation is often not possible or ethical in human subjects, and thus without these animal models the advancement in knowledge of the patho-physiology of disease would come to a standstill.

The way in which kidneys succumb to disease and the development of renal failure involves complex interactions between numerous different systems, mediated by a multitude of chemicals. Current understanding of renal disease is merely the tip of the metaphorical iceberg. The history of renal pathology is plagued by controversy, and nowhere is this more evident than in the development of cardiovascular disease in patients with chronic renal failure. Impairment of renal function increases the risk of cardiac disease to 15-20 times that of individuals with normal renal function. The result is that cardiac disease causes 40% of deaths in patients on dialysis.

This review discusses the principles of using animal models, the history of their use in the study of renal hypertension, the controversies arising from experimental models of non-hypertensive uraemic cardiomyopathy and the lessons learned from these models, and highlights important areas of future research in this field, including de novo cardiomyopathy secondary to renal transplantation.

Myocardial Interstitial Fibrosis, Cardiac Compliance and Vascular Architecture

Using subtotally nephrectomised Sprague-Dawley rats, Mall et al. showed that the increase in total heart weight demonstrated by Rambausek et al. after 21 days of uremia (as well as an increase in both right and left ventricular weight) was secondary to an increase in true interstitial volume, both cellular and non-cellular, with increased deposition of collagen. This was associated with activated interstitial cells, and a reduced capillary cross-sectional area. In 1992, this latter point was confirmed using stereological techniques to analyse perfusion-fixed hearts of subtotally nephrectomised Sprague-Dawley rats. Uremia resulted in increased blood pressure and reduced capillary length per unit myocardial volume, as well as reduced capillary luminal surface density and volume density, compared to control rats. The same group found a blood pressure-independent increase in the wall to lumen ratio of intramyocardial arteries, and in the aorta media thickness of subtotally nephrectomised rats. The intramyocardial arterial wall thickening has been found to be due to hypertrophy rather than hyperplasia, independent of blood pressure.  These architectural changes were reported again in 1996. In that experiment, nephrectomised Sprague-Dawley rats were given ramipril, nifedipine or moxonidine to normalise blood pressure; these drugs had differential effects on the above architectural changes, and also acted to prevent these changes.  The different changes in interstitial and capillary density in uremic cardiomyopathy have not yet been explained, but the role of growth factors such as basic fibroblast growth factor (BFGF) and vascular endothelial growth factor (VEGF) has been proposed.

Cardiac Function and Energetics in Uremia

The above experiments provided some insight into the structural changes seen in uraemic hearts. They were followed by a study using the subtotal (5/6) nephrectomy model on Wistar rats, in which the authors focused on the mechanical effects of these structural changes in vitro, thereby removing neurohormonal influences on cardiac contractility. Four weeks after surgery, isolated perfusing working heart preparations demonstrated reduced cardiac output. However, blood pressure was not controlled during the four weeks post-operatively, and could have contributed to the effects. An increased susceptibility to ischemic damage was also shown via decreased phosphocreatine content, and an increased release of inosine (a marker of ischaemic damage). These hearts failed in response to increases in calcium; the authors proposed that impaired cytosolic calcium control played a role in the relationship between renal failure and impaired cardiac function.

This in vitro experiment demonstrated the fact that impaired cardiac function was independent of circulating urea and creatinine, as the hearts were perfused with physiological saline, with no effect from the addition of urea and creatinine. The opposite has been shown in spontaneously beating mouse cardiac myocytes, in response to sera from patients on haemodialysis for chronic renal failure. Urea, creatinine, and combinations of the two reduced the cardiac inotropy and resulted in arrhythmias and asynchronies.

These experiments make a good case for uremic cardiomyopathy to be a distinct entity from hypertensive cardiac dysfunction and atherosclerotic cardiac disease secondary to the risk factors common to both heart and kidney disease. The cause of this phenomenon is still controversial, with parathyroid hormone (PTH), angiotensin II, marino-bufagenin (MBG), oxidative stress, and growth hormone.

The Role of Calcium in Uremic Cardiomyopathy

Calcium ions play a crucial role in cardiac physiology, particularly in myocardial excitation-contraction coupling. Therefore, PTH was one of the first culprits to be suspected of playing a role in the pathophysiology of uremic cardiomyopathy; this was as early as 1984. As reviewed by Rostand and Drüeke, there are numerous theories pertaining to the mechanisms whereby PTH could act as an intermediary between renal impairment and cardiomyopathy. These include

  • direct trophic effects on myocytes
  • interstitial fibroblasts,
  • indirect effects via anaemia or large and small vessel changes.

Rostand and Drüeke suggest an increase in blood pressure via hypercalcemia, but the effects on the heart appear to be independent of blood pressure.

Rambausek et al. noted increased cardiac calcium content in experimental rats, and that an increase in heart weight still occurred after parathyroidectomy with calcium supplementation. This was followed in the 1990s by in vitro experiments that demonstrated; an increased cytosolic calcium concentration in isolated rat myocytes in response to PTH, a reduced expression of PTH-related peptide receptor mRNA in rat hearts secondary to hyperparathyroidism due to chronic renal failure, and increased force and frequency of contraction of isolated, beating rat cardiomyocytes.

Subsequent to “chance observations” in the laboratory, Amann et al. argued for the role of PTH in the wall thickening of intramyocardial arterioles and for fibroblast activation and subsequent cardiac fibrosis. Abolishing hyperparathyroidism prevented the cardiac fibrosis and capillary changes normally seen in nephrectomised rats, which was independent of blood pressure.

The Renin-Angiotensin System (RAS) and Endothelin

Many studies have highlighted the importance of the RAS in the development of uremic cardiomyopathy. Tornig et al. showed that in nephrectomised rats, ramipril, an ACE inhibitor, prevented the increased wall thickness of the intramyocardial arterioles, as well as the expansion of nonvascular cardiac interstitial volume and the aortic wall and lumen changes, but not the reduced capillary length density. The same group subsequently repeated these observations, and demonstrated that the beneficial effects of ramipril were prevented by the use of specific bradykinin B2 receptor antagonists, suggesting a role for increased bradykinin as a mediator for the effects of ramipril.

CONCLUSIONS

Experimental models have played a crucial role in the study of the complex interplay between the heart and the kidney in chronic renal disease. In view of the numerous differences in animal and human anatomy, physiology and pathology, the results of these experiments should be interpreted with caution, but in some areas, these studies have led directly to advances in therapeutics.
(RC Grossman. 2010.)

Deficiency of the Calcium-Sensing Receptor

Rare loss-of-function mutations in the calcium-sensing receptor (Casr) gene lead to decreased urinary calcium excretion in the context of parathyroid hormone (PTH)–dependent hypercalcemia, but the role of Casr in the kidney is unknown. Using animals expressing Cre recombinase driven by the Six2 promoter, we generated mice that appeared grossly normal but had undetectable levels of Casr mRNA and protein in the kidney. Baseline serum calcium, phosphorus, magnesium, and PTH levels were similar to control mice. When challenged with dietary calcium supplementation, however, these mice had significantly lower urinary calcium excretion than controls (urinary calcium to creatinine, 0.31±0.03 versus 0.63±0.14; P=0.001). Western blot analysis on whole-kidney lysates suggested an approximately four-fold increase in activated Na+-K+-2Cl cotransporter (NKCC2). In addition, experimental animals exhibited significant downregulation of Claudin14, a negative regulator of paracellular cation permeability in the thick ascending limb, and small but significant upregulation of Claudin16, a positive regulator of paracellular cation permeability. Taken together, these data suggest that renal Casr regulates calcium reabsorption in the thick ascending limb, independent of any change in PTH, by increasing the lumen-positive driving force for paracellular Ca2+ transport.
(Toka HR, Al-Romaih K, Koshy JM, DiBartolo, III S, et al. 2012)

References:

The renal sodium-calcium exchanger.
Dominguez JH, Juhaszova M, Feister HA.
J Lab Clin Med. 1992 Jun;119(6):640-9.
http://www.ncbi.nlm.nih.gov/pubmed/1593210

Na(+)-Ca2+ exchanger of rat proximal tubule: gene expression and subcellular localization.
Dominguez JH, Juhaszova M, Kleiboeker SB, Hale CC, Feister HA.
Am J Physiol. 1992 Nov;263(5 Pt 2):F945-50.
http://www.ncbi.nlm.nih.gov/pubmed/1443182

Calcium transport in renal epithelial cells
PA Friedman, FA Gesek
Am J Physiol – Renal Physiology 1993; 264(F181-F198)
http://ajprenal.physiology.org/content/264/2/F181

Effect of calcitonin on calcium transport by the luminal and basolateral membranes of the rabbit nephron.
Zuo Q, Claveau D, Hilal G, Leclerc M, Brunette MG.
Kidney Int. 1997; 51(6):1991-9.
http://www.ncbi.nlm.nih.gov/pubmed/9186893

Ca2+ transport by the luminal membrane of the distal nephron: action and interaction of protein kinases A and C.
Hilal G, Claveau D, Leclerc M, Brunette MG.
Biochem J. 1997 Dec 1;328 ( Pt 2):371-5
http://www.ncbi.nlm.nih.gov/pubmed/9371690

Calcium-sensing receptor and renal cation handling
Pascal Houillier and Michel Paillar
Nephrol. Dial. Transplant. (2003) 18 (12): 2467-2470. http://ndt.oxfordjournals.org/content/18/12/2467.full
http://dx.doi.org/10.1093/ndt/gfg420

Patch-clamp evidence for calcium channels in apical membranes of rabbit kidney connecting tubules.
S Tan and K Lau
J Clin Invest. 1993; 92(6): 2731–2736
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC288471/
http://dx.doi.org/10.1172/JCI116890

Bending the MDCK Cell Primary Cilium Increases Intracellular Calcium
H.A. Praetorius, K.R. Spring
J Membrane Biol 2001; 184(1), pp 71-7
http://link.springer.com/article/10.1007/s00232-001-0075-4

Branching points of renal resistance arteries are enriched in L-type calcium channels and initiate vasoconstriction.
M S Goligorsky, D Colflesh, D Gordienko, L C Moore
Am J Physiol 03/1995; 268(2 Pt 2):F251-7.
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC9186893/

G proteins regulate calcium channels in the luminal membranes of the rabbit nephron
Brunette MG, Hilal G, Mailloux J, Leclerc M.
Nephron. 2000 Jul;85(3):238-47.
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC10867539/

Characterization of three types of calcium channel in the luminal membrane of the distal nephron
MG Brunette, M Leclerc, D Couchourel, J Mailloux, Y Bourgeois
Can J Phy Pharma 2004; 82(1): 30-37     http://dx.doi.org/10.1139/y03-127

ATP directly enhances calcium channels in the luminal membrane of the distal nephron
MG Brunette, J Mailloux, G Hilal
J Cell Phys 1999; 181(3), pp 416–423
http://dx.doi.org/10.1002/(SICI)1097-4652(199912)181:3<416::AID-JCP5>3.0.CO;2-X

Discovery of alpha-Klotho and FGF23 unveiled new insight into calcium and phosphate homeostasis
Nabeshima Y.
Clin Calcium. 2008;18(7):923-34. http://dx.doi.org/CliCa0807923934

Deficiency of the calcium-sensing receptor in the kidney causes parathyroid hormone-independent hypocalciuria
Toka HR, Al-Romaih K, Koshy JM, DiBartolo S, III, Kos, CH, et al.
J Am Soc Nephrol 2012; 23: 1879-1890.   http://dx.doi.org/10.1681/ASN.2012030323

The renal Na+/Ca2+ exchange system is located exclusively in the distal tubule
Ramachandram C, Brunette MG.
Biochem J 1989;257:259-264

Calcium ion transport across plasma membranes isolated from rat kidney cortex
Gmaj P, Murer H, Kinne R
Biochem J 1979; 178:549-557

Model-based analysis of Fgf23 regulation in chronic renal disease
Yokota H, Pires A, Raposo JF, Ferreira HG.
Gene Reg and Systems Biol 2010; 4: 53-60

Kidney and Calcium Homeostasis
Un Sil Jeon
Electrolyte & Blood Pressure  2008; 6:68-76

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68-76.hwp

1 Ca2+ absorption in the thick ascending limb of Henle (TAL).
 The schematic view of Ca2+ reabsorption in the TAL.
Paracellin-1 (claudin-16) is located in the tight junction of
TAL  and serves as the paracellular route for divalent cations.
The mechanism of Ca2+ absorption in the renal epithelium.  Transcellular Ca2+

reabsorption in the distal convoluted tubule (DCT) and connecting tubule (CNT)
occurs by three steps;
(i) entry of Ca2+ through the calcium channels [transient receptor potential
vanilloid (TRPV) 5, TRPV6] in the apical membrane,
(ii) binding of Ca2+ with calcium-binding protein (calbindin) and diffusion in the
cytoplasm (without significant change in the intracellular i[Ca2+]), and
(iii) Ca2+ extrusion via an ATP-dependent Ca2+-ATPase (PMCA1b) or an
Na2+/Ca2+ exchanger (NCX1) in the basolateral membrane.

Read Full Post »

The Cardiorenal Syndrome in Heart Failure: Cardiac? Renal? syndrome?

Writer and Curator: Larry H. Bernstein, MD, FCAP

and

Curator: Aviva Lev-Ari, PhD, RN 

Triposkiadis F, Starling RC, Boudoulas H, Giamouzis G, Butler J.
Heart Fail Rev. 2012 May;17(3):355-66. http://dx.doi.org/10.1007/s10741-011-9291-x Review

There has been increasing interest on the so-called cardiorenal syndrome (CRS), defined as

  • a complex pathophysiological disorder of the heart and kidneys where by acute or chronic dysfunction in one organ may induce acute or chronic dysfunction in the other.

In this review, we contend that there is lack of evidence warranting the adoption of a specific clinical construct such as the CRS within the heart failure (HF) syndrome by demonstrating that:

(a) the approaches and tools regarding the definition of kidney involvement in HF are suboptimal;
(b) development of renal failure in HF is often confounded by age, hypertension, and diabetes;
(c) worsening of renal function (WRF) in HF may be largely independent of alterations in cardiac function;
(d) the bidirectional association between HF and renal failure is not unique and represents one of the several such associations encountered in HF; and
(e) inflammation is a common denominator for HF and associated noncardiac morbidities.

Based on these arguments, we believe that

  • dissecting one of the multiple bidirectional associations in HF and
  • constructing the so-called cardiorenal syndrome is not justified pathophysiologically.

Fully understanding of all morbid associations and not only the cardiorenal, that is of great significance for the clinician who is caring for the patient with HF.

Ultrafiltration in Heart Failure with Cardiorenal Syndrome

N Engl J Med 2013; 368:1157-1160 http://dx.doi.org/10.1056/NEJMc1300456

Bart et al. (Dec. 13 issue)1 report the results of the Cardiorenal Rescue Study in Acute Decompensated Heart Failure (CARRESS-HF). They state that ultrafiltration was inferior to a strategy of stepped pharmacologic therapy with respect to the

It is unclear at first sight why renal function should be different at 96 hours only when serum creatinine concentrations are used as a marker of renal function,

  • but not when the level of cystatin C or the glomerular filtration rate are used.

How can this discrepancy be explained?

According to the study Ultrafiltration in Decompensated Heart Failure with Cardiorenal Syndrome

Bart BA., Goldsmith SR., Lee KL, Givertz MM, et al.
N Engl J Med 2012; 367:2296-2304 http://dx.doi.org/10.1056/NEJMoa1210357

Ultrafiltration is an alternative strategy to diuretic therapy for the treatment of patients with acute decompensated heart failure.

Little is known about the efficacy and safety of ultrafiltration in patients with acute decompensated heart failure

  • complicated by persistent congestion and worsened renal function.

Ultrafiltration was inferior to pharmacologic therapy with respect to the bivariate end point of

  1. the change in the serum creatinine level and body weight 96 hours after enrollment (P=0.003),
  2. owing primarily to an increase in the creatinine level in the ultrafiltration group.
  • At 96 hours, the mean change in the creatinine level was −0.04±0.53 mg per deciliter (−3.5±46.9 μmol per liter) in the pharmacologic-therapy group,
  • as compared with +0.23±0.70 mg per deciliter (20.3±61.9 μmol per liter) in the ultrafiltration group (P=0.003).

A higher percentage of patients in the ultrafiltration group than in the pharmacologic-therapy group had a serious adverse event (72% vs. 57%, P=0.03).
In a randomized trial involving patients hospitalized for acute decompensated heart failure,

  1. worsened renal function, and
  2. persistent congestion,

the use of a stepped pharmacologic-therapy algorithm was superior to a strategy of ultrafiltration for

  • the preservation of renal function at 96 hours,
  • with a similar amount of weight loss with the two approaches. 

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What is Acute Heart Failure?

What is Acute Heart Failure? (Photo credit: Novartis AG)

English: Physiology of Nephron

English: Physiology of Nephron (Photo credit: Wikipedia)

Forrester-classification for classification of...

Forrester-classification for classification of Congestive heart failure ; Forrester-Klassifikation zur Einteilung einer akuten Herzinsuffizienz (Photo credit: Wikipedia)

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Pre-operative Risk Factors and Clinical Outcomes Associated with Vasoplegia in Recipients of Orthotopic Heart Transplantation in the Contemporary Era.

Writer and Curator: Larry H. Bernstein, MD, FCAP

and

Curator: Aviva Lev-Ari, PhD, RN 

 

 Patarroyo M, Simbaqueba C, Shrestha K, Starling RC, Smedira N, Tang WH, Taylor DO.
 
BACKGROUND:  Patients who underwent orthotopic heart transplant (OHT) can develop vasoplegia, which is
  • associated with high mortality and morbidity.
Herein we examine the per-operative risk in OHT recipients at Cleveland Clinic.  Vasoplegic syndrome is
  • low systemic vascular resistance ( SVR index <1,600 dyn∙seg/cm5/m2 ) and
  • high cardiac output ( cardiac index >2.5 l/min/m2 )
  • within the first 4 postoperative hours.
VPS occurs more frequently after on pump CABG surgery versus off pump CABG surgery.

Methylene blue and vasoplegia: who, when, and how?

Stawicki SP, Sims C, Sarani B, Grossman MD, Gracias VH.
Department of Surgery, Division of Surgical Critical Care, University of Pennsylvania School of Medicine
Mini Rev Med Chem. 2008 May;8(5):472-90.  http://www.ncbi.nlm.nih.gov/pubmed/18473936
Vasoplegia or vasoplegic syndrome (VS) is thought to be due to
  • dysregulation of endothelial homeostasis and subsequent endothelial dysfunction
  • secondary to direct and indirect effects of multiple inflammatory mediators.
Vasoplegia has been observed in all age groups and in various clinical settings, such as anaphylaxis (including protamine reaction), sepsis, hemorrhagic shock, hemodialysis, and cardiac surgery. Among mechanisms thought to be contributory to VS, the nitric oxide (NO)/cyclic guanosine monophosphate (cGMP) pathway appears to play a prominent role.
Methylene blue (MB),
  • an inhibitor of nitric oxide synthase (NOS) and guanylate cyclase (GC),
has been found to improve
  • the refractory hypotension associated with endothelial dysfunction of VS.
METHODS:  We reviewed peri-operative data from 311 consecutive adult patients who underwent OHT between January 2003 and June 2008.
Vasoplegia was defined as
  1. persistent low systemic vascular resistance,
  2. despite multiple intravenous pressor drugs at high dose,
  3. between 6 and 48 hours after surgery.
RESULTS:  In our cohort of 311 patients, 35 (11%) patients developed vasoplegia syndrome; these patients were more likely to be UNOS Status 1A, with
  • a higher body surface area (1.8 ± 0.25 vs 1.63 ± 0.36, p = 0.0007),
  • greater history of thyroid disease (38.2% vs 18.5%, p = 0.0075) and
  • a higher rate of previous cardiothoracic surgery (79% vs 48%, p = 0.0006).
Pre-operatively,
  • they were more frequently treated with aspirin (73% vs 48%, p = 0.005) and
  • mechanical assist devices (ventricular assist devices [VADs]: 45% vs 17%, p < 0.0001;
  • total artificial hearts: 8.6% vs 0%, p < 0.0001), and
  • less treated with milrinone (14.7% vs 45.8%, p = 0.0005).
Bypass time (118 ± 37 vs 142 ± 39 minutes, p = 0.0002) and
donor heart ischemic time (191 ± 46 vs 219 ± 51 minutes, p = 0.002) were longer, with
  • higher mortality (3.2% vs 17.1%, p = 0.0003) and morbidity in the first 30 days after transplant.
In the multivariate analysis, history of thyroid disease (odds ratio [OR] = 2.7, 95% CI 1.0 to 7.0, p = 0.04) and VAD prior to transplant (OR = 2.8, 95% CI 1.07 to 7.4, p = 0.03)
  • were independent risk factors for development of vasoplegia syndrome.
CONCLUSIONS:
  1. High body mass index,
  2. long cardiopulmonary bypass time,
  3. prior cardiothoracic surgery,
  4. mechanical support,
  5. use of aspirin, and
  6. thyroid disease
are risk factors associated with development of vasoplegia syndrome.

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http://pharmaceuticalintelligence.com/2013/05/29/scientists-prevent-heart-failure-in-mice/
Economic Toll of Heart Failure in the US: Forecasting the Impact of Heart Failure in the United States – A Policy Statement From the American Heart Association (Aviva Lev-Ari)
http://pharmaceuticalintelligence.com/2013/04/25/economic-toll-of-heart-failure-in-the-us-forecasting-the-impact-of-heart-failure-in-the-united-states-a-policy-statement-from-the-american-heart-association/
Stenosis, ischemia and heart failure (Aviva Lev-Ari)
http://pharmaceuticalintelligence.com/2013/05/16/stenosis-ischemia-and-heart-failure/
Congestive Heart Failure & Personalized Medicine: Two-gene Test predicts response to Beta Blocker Bucindolol (Aviva Lev-Ari)
http://pharmaceuticalintelligence.com/2012/10/17/chronic-heart-failure-personalized-medicine-two-gene-test-predicts-response-to-beta-blocker-bucindolol/

Gene Therapy Into Healthy Heart Muscle: Reprogramming Scar Tissue In Damaged Hearts
(Aviva Lev-Ari)

http://pharmaceuticalintelligence.com/2013/01/09/gene-therapy-into-healthy-heart-muscle-reprogramming-scar-tissue-in-damaged-hearts/

Heart Renewal by pre-existing Cardiomyocytes: Source of New Heart Cell Growth Discovered
Aviva Lev-Ari)
http://pharmaceuticalintelligence.com/2012/12/23/heart-renewal-by-pre-existing-cardiomyocytes-source-of-new-heart-cell-growth-discovered/

Heart Remodeling by Design – Implantable Synchronized Cardiac Assist Device: Abiomed’s Symphony (Aviva lev-Ari)

http://pharmaceuticalintelligence.com/2012/07/23/heart-remodeling-by-design-implantable-synchronized-cardiac-assist-device-abiomeds-symphony/

Survivals Comparison of Coronary Artery Bypass Graft (CABG) and Percutaneous Coronary Intervention (PCI) / Coronary Angioplasty (larryhbern)
http://pharmaceuticalintelligence.com/2013/06/23/comparison-of-cardiothoracic-bypass-and-percutaneous-interventional-catheterization-survivals/
First case in the US: Valve-in-Valve (Aortic and Mitral) Replacements with Transapical Transcatheter Implants – The Use of Transfemoral Devices (larryhbern)
http://pharmaceuticalintelligence.com/2013/06/23/valve-in-valve-replacements-with-transapical-transcatheter-implants/
Ventricular Assist Device (VAD): A Recommended Approach to the Treatment of Intractable Cardiogenic Shock (larryhbern)
http://pharmaceuticalintelligence.com/2013/06/18/a-recommended-approach-to-the-treatmnt-of-intractable-cardiogenic-shock/
Trans-apical Transcatheter Aortic Valve Replacement in a Patient with Severe and Complex Left Main Coronary Artery Disease (LMCAD) (larryhbern)
http://pharmaceuticalintelligence.com/2013/06/17/management-of-difficult-trans-apical-transcatheter-aortic-valve-replacement-in-a-patient-with-severe-and-complex-arterial-disease/
Clinical Indications for Use of Inhaled Nitric Oxide (iNO) in the Adult Patient Market: Clinical Outcomes after Use, Therapy Demand and Cost of Care (Aviva Lev-Ari)
http://pharmaceuticalintelligence.com/2013/06/03/clinical-indications-for-use-of-inhaled-nitric-oxide-ino-in-the-adult-patient-market-clinical-outcomes-after-use-therapy-demand-and-cost-of-care/

Space-filling model of the cyclic guanosine mo...

Space-filling model of the cyclic guanosine monophosphate molecule, also known as cGMP, a nucleotide. This image shows the anionic (negatively charged) form. Colour code (click to show) : Black: Carbon, C : White: Hydrogen, H : Red: Oxygen, O : Blue: Nitrogen, N : Orange: Phosphorus, P (Photo credit: Wikipedia)

Ball-and-stick model of the cyclic guanosine m...

Ball-and-stick model of the cyclic guanosine monophosphate molecule, also known as cGMP, a nucleotide. This image shows the anionic (negatively charged) form. Colour code (click to show) : Black: Carbon, C : White: Hydrogen, H : Red: Oxygen, O : Blue: Nitrogen, N : Orange: Phosphorus, P (Photo credit: Wikipedia)

English: Drawing showing targets of cGMP in cells

English: Drawing showing targets of cGMP in cells (Photo credit: Wikipedia)

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Mechanical Circulatory Assist Devices as a Bridge to Heart Transplantation or as “Destination Therapy“: Options for Patients in Advanced Heart Failure

Writer and Curator: Larry H. Bernstein, MD, FCAP

and

Curator: Aviva Lev-Ari, PhD, RN 

 

UPDATED on 10/22/2018

HeartMate 3 gets FDA approval for extended use

Revamped Abbott Labs device is seen as an option for cardiac patients who are unlikely to get transplants.

“When heart failure (HF) progresses to an advanced stage, difficult decisions must be made,” the AHA says on its website. “Do I want to receive aggressive treatment? Is quality of life more important than living as long as possible? How do I feel about resuscitation?”

LVADs can take over the pumping function of a failing heart, but they also present some of the most expensive implantable-device surgeries. An article in the peer-reviewed journal JACC: Heart Failure reported last year that the average total cost to implant an LVAD in Medicare beneficiaries was $175,000, more than double the cost of a heart transplant.

Amador said between 5,000 and 5,500 Americans will have LVAD implants this year. That compares with 2,200 adult heart transplants that happen annually in the U.S., according to the JACC article.

Starling RC.
Cleve Clin J Med. 2013 Jan; 80(1):33-40. http://dx.doi.org/10.3949/ccjm.80gr.12003

For patients with advanced heart failure, outcomes are good after heart transplantation, but not enough donor hearts are available. Fortunately, mechanical circulatory assist devices have become an excellent option and should be considered either as a bridge to transplantation or as “destination therapy.” Current mechanical circulatory assist devices improve quality of life in patients who are candidates.
For some patients, conventional treatments are inadequate to relieve the effects of heart failure. Under these circumstances, mechanical circulatory support is considered. There are now a variety of devices capable of pumping blood to restore circulation of vital organs, even temporarily replacing the function of the native heart.

The ABIOMED AB5000™ Circulatory Support System is a short-term mechanical system that can provide left, right, or biventricular support for patients whose hearts have failed but have the potential for recovery. The AB5000™ can be used to support the heart, giving it time to rest – and potentially recover native heart function. The device can also be used as a bridge to definitive therapy.

http://med.umich.edu/cardiac-surgery/images/content/Abiomed_AB5000.jpg

Abiomed_AB5000

CardioWest™ temporary Total Artificial Heart (TAH-t) http://www.syncardia.com/cardiowesttaht/index.php
This medical device is the modern version of the Jarvik 7 artificial heart first implanted into Barney Clark in 1982. The CardioWest™ temporary Total Artificial Heart is the only FDA approved temporary total artificial heart in the world.
The TAH-t is used as a bridge to heart transplant for eligible patients suffering from end-stage biventricular failure.
http://med.umich.edu/cardiac-surgery/images/content/Cardiowest_TAHt_Photo.jpg

Cardiowest_TAHt_Photo

Other related articles published on this Scientific Journal include the following:

Ventricular Assist Device (VAD): A Recommended Approach to the Treatment of Intractable Cardiogenic Shock (larryhbern)
http://pharmaceuticalintelligence.com/2013/06/18/a-recommended-approach-to-the-treatmnt-of-intractable-cardiogenic-shock/

Trans-apical Transcatheter Aortic Valve Replacement in a Patient with Severe and Complex Left Main Coronary Artery Disease (LMCAD) (larryhbern)
http://pharmaceuticalintelligence.com/2013/06/17/management-of-difficult-trans-apical-transcatheter-aortic-valve-replacement-in-a-patient-with-severe-and-complex-arterial-disease/
Clinical Indications for Use of Inhaled Nitric Oxide (iNO) in the Adult Patient Market: Clinical Outcomes after Use, Therapy Demand and Cost of Care (Aviva Lev-Ari)
http://pharmaceuticalintelligence.com/2013/06/03/clinical-indications-for-use-of-inhaled-nitric-oxide-ino-in-the-adult-patient-market-clinical-outcomes-after-use-therapy-demand-and-cost-of-care

Gene Therapy Into Healthy Heart Muscle: Reprogramming Scar Tissue In Damaged Hearts
(Aviva Lev-Ari)
http://pharmaceuticalintelligence.com/2013/01/09/gene-therapy-into-healthy-heart-muscle-reprogramming-scar-tissue-in-damaged-hearts/

Heart Renewal by pre-existing Cardiomyocytes: Source of New Heart Cell Growth Discovered
(Aviva Lev-Ari)
http://pharmaceuticalintelligence.com/2012/12/23/heart-renewal-by-pre-existing-cardiomyocytes-source-of-new-heart-cell-growth-discovered/

Heart Remodeling by Design – Implantable Synchronized Cardiac Assist Device: Abiomed’s Symphony (Aviva Lev-Ari)
http://pharmaceuticalintelligence.com/2012/07/23/heart-remodeling-by-design-implantable-synchronized-cardiac-assist-device-abiomeds-symphony/

Economic Toll of Heart Failure in the US: Forecasting the Impact of Heart Failure in the United States – A Policy Statement From the American Heart Association (Aviva Lev-Ari)
http://pharmaceuticalintelligence.com/2013/04/25/economic-toll-of-heart-failure-in-the-us-forecasting-the-impact-of-heart-failure-in-the-united-states-a-policy-statement-from-the-american-heart-association/

Stenosis, Ischemia and Heart Failure (Aviva Lev-Ari)
http://pharmaceuticalintelligence.com/2013/05/16/stenosis-ischemia-and-heart-failure/

Congestive Heart Failure & Personalized Medicine: Two-gene Test predicts response to Beta Blocker Bucindolol (Aviva Lev-Ari)
http://pharmaceuticalintelligence.com/2012/10/17/chronic-heart-failure-personalized-medicine-two-gene-test-predicts-response-to-beta-blocker-bucindolol/

Phrenic Nerve Stimulation in Patients with Cheyne-Stokes Respiration and Congestive Heart Failure (larryhbern)
http://pharmaceuticalintelligence.com/2013/06/20/phrenic-nerve-stimulation-in-patients-with-cheyne-stokes-respiration-and-congestive-heart-failure/

First Drug to improve Heart Failure Mortality in Over a Decade – HealthCanal.com (Aviva Lev-Ari)
http://pharmaceuticalintelligence.com/2013/06/03/first-drug-to-improve-heart-failure-mortality-in-over-a-decade-healthcanal-com/

Meta-analysis: Heart Failure Worsens Short-term Prognosis of NSTE-ACS Patients – TCTMD
(Aviva Lev-Ari)
http://pharmaceuticalintelligence.com/2013/06/06/meta-analysis-heart-failure-worsens-short-term-prognosis-of-nste-acs-patients-tctmd/

THYMOSIN (Aviva Lev-Ari)
http://pharmaceuticalintelligence.com/2013/02/28/the-heart-vasculature-protection-a-concept-based-pharmacological-therapy-including-thymosin/

Resident-cell-based Therapy (Aviva Lev-Ari)
http://pharmaceuticalintelligence.com/2012/04/30/93/

Amyloidosis with Cardiomyopathy (larryhbern)
http://pharmaceuticalintelligence.com/2013/03/31/amyloidosis-with-cardiomyopathy/

Blood-vessels-generating stem cells discovered (ritu.saxena)
http://pharmaceuticalintelligence.com/2012/10/22/blood-vessel-generating-stem-cells-discovered/

Stem Cell Research — The Frontier is at the Technion in Israel (A Lev-Ari)
http://pharmaceuticalintelligence.com/2012/09/06/stem-cell-research-the-frontier-is-at-the-technion-in-israel/

Implantable Synchronized Cardiac Assist Device Designed for Heart Remodeling: Abiomed’s Symphony

Aviva Lev-Ari, PhD, RN

http://pharmaceuticalintelligence.com/2012/07/11/implantable-synchronized-cardiac-assist-device-designed-for-heart-remodeling-abiomeds-symphony/

 

What is Acute Heart Failure?

What is Acute Heart Failure? (Photo credit: Novartis AG)

English: The CardioWest™ temporary Total Artif...

English: The CardioWest™ temporary Total Artificial Heart (Photo credit: Wikipedia)

English: Graph showing the correlation between...

English: Graph showing the correlation between BNP serum level and mortality. Source: Inder S. Anand, Lloyd D. Fisher, Yann-Tong Chiang, Roberto Latini, Serge Masson,Aldo P. Maggioni, Robert D. Glazer, Gianni Tognoni, Jay N. Cohn (24th Feb 2003). Changes in Brain Natriuretic Peptide and Norepinephrine Over Time and Mortality and Morbidity in the Valsartan Heart Failure Trial (Val-HeFT). Circulation 107: 1278-83. DOI: 10.1161/01.CIR.0000054164.99881.00 (Photo credit: Wikipedia)

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Heart Transplantation: NHLBI’s Ten year Strategic Research Plan to Achieving Evidence-based Outcomes

Writer and Curator: Larry H Bernstein, MD, FCAP

and

Curator: Aviva Lev-Ari, PhD, RN 

 

Heart transplantation research in the next decade–a goal to achieving evidence-based outcomes: National Heart, Lung, And Blood Institute Working Group.

Shah MR, Starling RC, Schwartz Longacre L, Mehra MR; Working Group Participants.

The National Heart, Lung, and Blood Institute (NHLBI) convened a Working Group (WG) on August 5 to 6, 2010 in Bethesda, Maryland to discuss future directions of research in heart transplantation (HT). The WG was composed of researchers with expertise in the basic science, clinical science, and epidemiological aspects of advanced heart failure and HT.
These experts were asked to
  1. identify the highest priority research gaps in the field and
  2. make recommendations for future research strategies.
The WG was also asked to include approaches that capitalize on current scientific opportunities and focus on areas that required unique NHLBI leadership. Finally, the WG was charged with developing recommendations that would have short- and long-term impact on the field of HT. The WG participants reviewed key areas in HT and identified the most urgent knowledge gaps.
These gaps were then organized into the following 4 specific research directions:
1) enhanced phenotypic characterization of the pre-transplant population;
2) donor-recipient optimization strategies;
3) individualized immunosuppression therapy; and,
4) investigations of immune and non-immune factors affecting late cardiac allograft outcomes.
Finally, because the HT population is relatively small compared with other patient groups, the WG strongly urged concerted efforts to enroll every transplant recipient into a clinical study and to increase collaborative networks to optimize research in this field.

Other  related articles published on this Open Access Online Scientific Journal, include the following:

Heart Failure Treatment Improves, But Death Rate Remains High : NPR (A Lev-Ari)
http://pharmaceuticalintelligence.com/2013/05/29/heart-failure-treatment-improves-but-death-rate-remains-high-npr/

The Heart: Vasculature Protection – A Concept-based Pharmacological Therapy including THYMOSIN (Aviva Lev-Ari)
http://pharmaceuticalintelligence.com/2013/02/28/the-heart-vasculature-protection-a-concept-based-pharmacological-therapy-including-thymosin/

Resident-cell-based Therapy (Aviva Lev-Ari)
http://pharmaceuticalintelligence.com/2012/04/30/93/

Amyloidosis with Cardiomyopathy (larryhbern)
http://pharmaceuticalintelligence.com/2013/03/31/amyloidosis-with-cardiomyopathy/

Blood-vessels-generating stem cells discovered (ritu.saxena)
http://pharmaceuticalintelligence.com/2012/10/22/blood-vessel-generating-stem-cells-discovered/

Stem Cell Research — The Frontier is at the Technion in Israel (A Lev-Ari)
http://pharmaceuticalintelligence.com/2012/09/06/stem-cell-research-the-frontier-is-at-the-technion-in-israel/

Phrenic Nerve Stimulation in Patients with Cheyne-Stokes Respiration and Congestive Heart Failure (larryhbern)
http://pharmaceuticalintelligence.com/2013/06/20/phrenic-nerve-stimulation-in-patients-with-cheyne-stokes-respiration-and-congestive-heart-failure/

First drug to improve heart failure mortality in over a decade – HealthCanal.com (A Lev-Ari)
http://pharmaceuticalintelligence.com/2013/06/03/first-drug-to-improve-heart-failure-mortality-in-over-a-decade-healthcanal-com/

Meta-analysis: Heart Failure Worsens Short-term Prognosis of NSTE-ACS Patients – TCTMD
(Aviva Lev-Ari)
http://pharmaceuticalintelligence.com/2013/06/06/meta-analysis-heart-failure-worsens-short-term-prognosis-of-nste-acs-patients-tctmd/

Scientists prevent heart failure in mice (Aviva Lev-Ari)
http://pharmaceuticalintelligence.com/2013/05/29/scientists-prevent-heart-failure-in-mice/

Economic Toll of Heart Failure in the US: Forecasting the Impact of Heart Failure in the United States – A Policy Statement From the American Heart Association (Aviva Lev-Ari)
http://pharmaceuticalintelligence.com/2013/04/25/economic-toll-of-heart-failure-in-the-us-forecasting-the-impact-of-heart-failure-in-the-united-states-a-policy-statement-from-the-american-heart-association/

Stenosis, ischemia and heart failure (Aviva Lev-Ari)
http://pharmaceuticalintelligence.com/2013/05/16/stenosis-ischemia-and-heart-failure/

Congestive Heart Failure & Personalized Medicine: Two-gene Test predicts response to Beta Blocker Bucindolol (Aviva Lev-Ari)
http://pharmaceuticalintelligence.com/2012/10/17/chronic-heart-failure-personalized-medicine-two-gene-test-predicts-response-to-beta-blocker-bucindolol/

Heart Renewal by pre-existing Cardiomyocytes: Source of New Heart Cell Growth Discovered
Aviva Lev-Ari)
http://pharmaceuticalintelligence.com/2012/12/23/heart-renewal-by-pre-existing-cardiomyocytes-source-of-new-heart-cell-growth-discovered/

Heart Remodeling by Design – Implantable Synchronized Cardiac Assist Device: Abiomed’s Symphony (A lev-Ari)
http://pharmaceuticalintelligence.com/2012/07/23/heart-remodeling-by-design-implantable-synchronized-cardiac-assist-device-abiomeds-symphony/

First case in the US: Valve-in-Valve (Aortic and Mitral) Replacements with Transapical Transcatheter Implants – The Use of Transfemoral Devices (larryhbern)
http://pharmaceuticalintelligence.com/2013/06/23/valve-in-valve-replacements-with-transapical-transcatheter-implants/
Ventricular Assist Device (VAD): A Recommended Approach to the Treatment of Intractable

Cardiogenic Shock (larryhbern)
http://pharmaceuticalintelligence.com/2013/06/18/a-recommended-approach-to-the-treatmnt-of-intractable-cardiogenic-shock/

Trans-apical Transcatheter Aortic Valve Replacement in a Patient with Severe and Complex Left Main Coronary Artery Disease (LMCAD) (larryhbern)
http://pharmaceuticalintelligence.com/2013/06/17/management-of-difficult-trans-apical-transcatheter-aortic-valve-replacement-in-a-patient-with-severe-and-complex-arterial-disease/

Forrester-classification for classification of...

Forrester-classification for classification of Congestive heart failure ; Forrester-Klassifikation zur Einteilung einer akuten Herzinsuffizienz (Photo credit: Wikipedia)

Artificial heart: JARVIK-7 Heart, provided to ...

Artificial heart: JARVIK-7 Heart, provided to the National Heart, Lung and Blood Institute (NHLBI) by the University of Utah. (Photo credit: Wikipedia)

Schematic of a transplanted heart with native ...

Schematic of a transplanted heart with native lungs and the great vessels. (Photo credit: Wikipedia)

English: Ventricular assist device

English: Ventricular assist device (Photo credit: Wikipedia)

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After Cardiac Transplantation: Sirolimus acts as immunosuppressant Attenuates Allograft Vasculopathy

Writer and Curator: Larry H Bernstein, MD, FCAP

and

Curator: Aviva Lev-Ari, PhD, RN 

 

Sirolimus as primary immunosuppression attenuates allograft vasculopathy with improved late survival and decreased cardiac events after cardiac transplantation

Topilsky Y, Hasin T, Raichlin E, Boilson BA, Schirger JA, et al.
Circulation. 2012 Feb 7;125(5):708-20.    http://dx.doi.org/10.1161/CIRCULATIONAHA.111.040360. Epub 2011 Dec 29

BACKGROUND: We retrospectively analyzed the potential of sirolimus as a primary immunosuppressant

  1. in the long-term attenuation of cardiac allograft vasculopathy progression and
  2. the effects on cardiac-related morbidity and mortality.
METHODS:  Forty-five cardiac transplant recipients were converted to sirolimus 1.2 years (0.2, 4.0) after transplantation with complete calcineurin inhibitor withdrawal. Fifty-eight control subjects 2.0 years (0.2, 6.5 years) from transplantation were maintained on calcineurin inhibitors.
  • Age,
  • sex,
  • ejection fraction, and
  • time from transplantation to baseline intravascular ultrasound study were not different (P>0.2 for all) between the groups;
  • neither were secondary immunosuppressants and
  • use of steroids.

Three-dimensional intravascular ultrasound studies were performed at baseline and 3.1 years (1.3, 4.6 years) later.

RESULTS:  Plaque index progression (plaque volume/vessel volume) was attenuated in the sirolimus group (0.7±10.5% versus 9.3±10.8%; P=0.0003) owing to
  1. reduced plaque volume in patients converted to sirolimus early (<2 years) after transplantation (P=0.05) and
  2. improved positive vascular remodeling (P=0.01) in patients analyzed late (>2 years) after transplantation.
Outcome analysis in 160 consecutive patients maintained on 1 therapy was performed regardless of performance of intravascular ultrasound examinations.
  1. Five-year survival was improved with sirolimus (97.4±1.8% versus 81.8±4.9%; P=0.006),
  2. There was freedom from cardiac-related events (93.6±3.2% versus 76.9±5.5%; P=0.002).
CONCLUSIONS:  Substituting calcineurin inhibitor with sirolimus as primary immunosuppressant
  1. attenuates long-term cardiac allograft vasculopathy progression and
  2. may improve long-term allograft survival owing to favorable coronary remodeling.
Because of the lack of randomization and retrospective nature of our analysis, the differences in outcome should be interpreted cautiously, and prospective clinical trials are required.

Related articles

Other related articles published on this Open Access Online Scientific Journal include the following:

Svelte Drug-Eluting Stent Utilizing New Class of Bioabsorbable Drug Coating Attains 0% Clinically-Driven Events Through 12-Months in First-In-Man Study
Aviva Lev-Ari, PhD, RN
Biomaterials Technology: Models of Tissue Engineering for Reperfusion and Implantable Devices for Revascularization
Larry h Benstein, MD, FCAP
Vascular Repair: Stents and Biologically Active Implants
Larry h Benstein, MD, FCAP
New Drug-Eluting Stent Works Well in STEMI
Aviva Lev-Ari, PhD, RN
Coronary Artery DiseaseMedical Devices Solutions: From First-In-Man Stent Implantation, via Medical Ethical Dilemmas to Drug Eluting Stents
Aviva Lev-Ari, PhD, RN
Table 1 Illustration

Table 1 Illustration (Photo credit: Libertas Academica)

Photograph of the Taxus drug-eluting stent, fr...

Photograph of the Taxus drug-eluting stent, from the web site of the U.S. Food and Drug Administration. (Photo credit: Wikipedia)

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Orthotopic Heart Transplant (OHT): Effects of Autonomic Innervation / Denervation on Atrial Fibrillation (AF) Genesis and Maintenance

Author and Curator: Larry H. Bernstein, MD, FCAP

and

Curator: Aviva Lev-Ari, PhD, RN

Sympathetic stimulation increases heart rate (positive chronotropy), inotropy and conduction velocity (positive dromotropy), whereas parasympathetic stimulation of the heart has opposite effects.

Noheria A, Patel SM, Mirzoyev S, Madhavan M, Friedman PA, Packer DL, Daly RC, Kushwaha SS, Edwards BS, Asirvatham SJ.

Division of Cardiology, Cedars-Sinai Medical Center, Los Angeles, California.
Pacing Clin Electrophysiol. 2013 Jun;36(6):741-7. http://dx.doi.org/10.1111/pace.12102. Epub 2013 Feb 25.

http://www.cvphysiology.com/Blood%20Pressure/ANS-medulla.gif
ANS- autonomic innervation of heart

The medulla, located in the brainstem above the spinal cord, is the primary site in the brain for regulating sympathetic and parasympathetic (vagal) outflow to the heart and blood vessels. The nucleus tractus solitarius (NTS) of the medulla receives sensory input from different systemic and central receptors (e.g., baroreceptors and chemoreceptors).
The heart is innervated by vagal and sympathetic fibers. The right vagus nerve primarily innervates the SA node, whereas the left vagus innervates the AV node; however, there can be significant overlap in the anatomical distribution. Atrial muscle is also innervated by vagal efferents, whereas the ventricular myocardium is only sparsely innervated by vagal efferents. Sympathetic efferent nerves are present throughout the atria (especially in the SA node) and ventricles, including the conduction system of the heart.
Cardiac function is altered by neural activation. Sympathetic stimulation increases heart rate (positive chronotropy), inotropy and conduction velocity (positive dromotropy), whereas parasympathetic stimulation of the heart has opposite effects.  Sympathetic and parasympathetic effects on heart function are mediated by beta-adrenoceptors and muscarinic receptors, respectively.
The overall effect of sympathetic activation is to increase cardiac output, systemic vascular resistance (both arteries and veins), and arterial blood pressure. Enhanced sympathetic activity is particularly important during exercise, emotional stress, and during hemorrhagic shock.
The actions of autonomic nerves are mediated by the release of neurotransmitters that bind to specific cardiac receptors and vascular receptors. These receptors are coupled to signal transduction pathways that evoke changes in cellular function.

                                         Sympathetic                      Parasympathetic

Heart

Chronotropy (rate)

+ + +                                     − − −

Inotropy (contractility)

+ + +                                      − 1

 Lusitropy (relaxation)                              
                                             + + +                                     –  1 
Dromotropy (conduction velocity)

                                              + +                                       − − −

Vessels

Arterial constriction    + + +                                    0

Venous constriction      + + +                                    0

Relative magnitude of responses indicated by number of + or – signs.
1 More pronounced in atria than ventricles.

CV Physiology: Autonomic Innervation of the Heart and Vasculature
http://www.cvphysiology.com/Blood%20Pressure/BP008.htm

Ablation Therapy for Cardiac Arrhythmias

By Richard N. Fogoros, M.D., About.com Guide Updated November 18, 2011
The most common form of ablation is done during a specialized form of cardiac catheterization, performed by a type of doctor known as a cardiac electrophysiologist (heart rhythm specialist). These procedures are sometimes called “trans-catheter ablations.”
During trans-catheter ablation procedures, specialized electrode catheters are positioned inside the heart, and the cardiac electrical system is mapped, showing the abnormal electrical pathways that are often responsible for producing the rapid heart rate. If these abnormal pathways are identified, the tip of the catheter (a tube) is placed on the abnormal pathway and the pathway is ablated (eliminated). The ablation itself is accomplished by transmitting some form of energy through the catheter (heat energy, freezing energy, or microwave energy), in order to damage the tissue at the tip of the catheter.

Decreased postoperative atrial fibrillation following cardiac transplantation: the significance of autonomic denervation.

BACKGROUND:  Endocardial ablation approaches have been proposed to targeting the retroatrial cardiac ganglia to treat atrial fibrillation (AF) . The potential value using this approach is unknown. Disruption of the autonomic inputs with orthotropic heart transplant (OHT) provides a unique opportunity to study the effects of autonomic innervation on AF genesis and maintenance.
The investigators hypothesized that due to denervation, the risk of postoperative AF would be lower following OHT compared to surgical maze even though both groups get isolation of the pulmonary veins.
METHODS:  We reviewed 155 OHTs (mean age 52 ± 11 years, 72% males) and used 1:1 age-, sex-, and date-of-surgery-matched two control groups from patients undergoing surgical maze or only coronary artery bypass grafting (CABG). Using conditional logistic regression we compared the odds of AF within 2 weeks following OHT versus controls.
RESULTS: Postoperative AF occurred in 10/155 (6.5%) OHT patients.
  1. The conditional odds of postoperative AF were lower for OHT as compared to controls (vs maze: odds ratio [OR] 0.27 [95% confidence interval (CI) 0.13-0.57], vs CABG: OR 0.38 [0.17-0.81], P = 0.003; and
  2. on additional adjustment for left atrial enlargement, vs maze: OR 0.28 [0.13-0.60], vs CABG: OR 0.14 [0.04-0.47], P = 0.0009).
CONCLUSIONS:
Risk of postoperative AF is significantly lower with OHT as in comparison to surgical maze. As both surgeries entail isolation of the pulmonary veins but
  • only OHT causes disruption of autonomic innervation,
this observation supports a mechanistic role of autonomic nervous system in AF. The benefit of targeting the cardiac autonomic system to treat AF needs further investigation.

Other related articles published on this Open Access Online Scientific Journal, including the following:

Imbalance of Autonomic Tone: The Promise of Intravascular Stimulation of Autonomics

Aviva Lev-Ari, PhD, RN

http://pharmaceuticalintelligence.com/2012/09/02/imbalance-of-autonomic-tone-the-promise-of-intravascular-stimulation-of-autonomics/

Renal Sympathetic Denervation: Updates on the State of Medicine

Aviva Lev-Ari, PhD, RN

http://pharmaceuticalintelligence.com/2012/12/31/renal-sympathetic-denervation-updates-on-the-state-of-medicine/

On Devices and On Algorithms: Prediction of Arrhythmia after Cardiac Surgery and ECG Prediction of an Onset of Paroxysmal Atrial Fibrillation

Justin D Pearlman, MD, PhD, FACC and Aviva Lev-Ari, PhD, RN
http://pharmaceuticalintelligence.com/2013/05/07/on-devices-and-on-algorithms-arrhythmia-after-cardiac-surgery-prediction-and-ecg-prediction-of-paroxysmal-atrial-fibrillation-onset/

Xarelto (Rivaroxaban): Anticoagulant Therapy gains FDA New Indications and Risk Reduction for: (DVT) and (PE), while in use for Atrial fibrillation increase in Gastrointestinal (GI) Bleeding Reported

Aviva Lev-Ari, PhD, RN
http://pharmaceuticalintelligence.com/2012/11/04/xarelto-rivaroxaban-anticoagulant-therapy-gains-fda-new-indications-and-risk-reduction-for-dvt-and-pe-while-in-use-for-atrial-fibrillation-increase-in-gastrointestinal-gi-bleeding-reported/
Sustained Cardiac Atrial Fibrillation: Management Strategies by Director of the Arrhythmia Service and Electrophysiology Lab at The Johns Hopkins Hospital

Aviva Lev-Ari, PhD, RN
http://pharmaceuticalintelligence.com/2012/10/16/sustained-cardiac-atrial-fibrillation-management-strategies-by-director-of-the-arrhythmia-service-and-electrophysiology-lab-at-the-johns-hopkins-hospital/
Stroke and Bleeding in Atrial Fibrillation with Chronic Kidney Disease

Aviva Lev-Ari, PhD, RN
http://pharmaceuticalintelligence.com/2012/08/16/stroke-and-bleeding-in-atrial-fibrillation-with-chronic-kidney-disease/
Atrial Fibrillation: The Latest Management Strategies

Aviva Lev-Ari, PhD, RN
http://pharmaceuticalintelligence.com/2012/07/16/atrial-fibrillation-the-latest-management-strategies/
Genetics of Conduction Disease: Atrioventricular (AV) Conduction Disease (block): Gene Mutations – Transcription, Excitability, and Energy Homeostasis

Aviva Lev-Ari, PhD, RN
http://pharmaceuticalintelligence.com/2013/04/28/genetics-of-conduction-disease-atrioventricular-av-conduction-disease-block-gene-mutations-transcription-excitability-and-energy-homeostasis/

Minimally Invasive Structural CVD Repairs: FDA grants 510(k) Clearance to Philips’ EchoNavigator – X-ray and 3-D Ultrasound Image Fused

Aviva Lev-Ari, PhD, RN
http://pharmaceuticalintelligence.com/2013/03/21/minimally-invasive-structural-cvd-repairs-fda-grants-510k-to-philips-echonavigator-x-ray-and-3-d-ultrasound-image-fused/

Accurate Identification and Treatment of Emergent Cardiac Events

Larry Bernstein, MD, FCAP
http://pharmaceuticalintelligence.com/2013/03/15/accurate-identification-and-treatment-of-emergent-cardiac-events/

Percutaneous Endocardial Ablation of Scar-Related Ventricular Tachycardia

Aviva Lev-Ari, PhD, RN

http://pharmaceuticalintelligence.com/2012/07/18/percutaneous-endocardial-ablation-of-scar-related-ventricular-tachycardia/

Sympathetic (red) and parasympathetic (blue) n...

Sympathetic (red) and parasympathetic (blue) nervous system Русский: Аанатомия иннервации вегетативной нервной системы. Системы: симпатическая (красным) и парасимпатическая (синим) Українська: Аанатомія іннервації вегетативної нервової системи. Симпатична (червоним) та парасимпатична (синім) гілки Polski: Układ autonomiczny: czerwony – sympatyczny, niebieski – parasympatyczny. (Photo credit: Wikipedia)

Scheme of atrial fibrillation (top) and sinus ...

Scheme of atrial fibrillation (top) and sinus rhythm (bottom). The purple arrow indicates a P wave, which is lost in atrial fibrillation. (Photo credit: Wikipedia)

English: A graphical representation of the Ele...

English: A graphical representation of the Electrical conduction system of the heart showing the Sinoatrial node, Atrioventricular node, Bundle of His, Purkinje fibers, and Bachmann’s bundle (Photo credit: Wikipedia)

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