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Posts Tagged ‘Cell Biology’

Author and Reporter: Anamika Sarkar, Ph.D.

Targeted therapies are proven approaches in Cancer and other complicated diseases. Degrees of activation of measured EGFR and ERB2/HER2 in cancer cells are thought of one of the ways to identify the scale of aggressiveness of cancer in tissues.  There are drugs, mostly for breast cancer, which targets inhibition of these receptors. Lapatinib (Tykerb, GSK – see Source for other targeted drugs) is the first drug which inhibits both EGFR and ERB2/HER2 gave hope to cancer patients, especially advanced ERB2-postive or metastatic breast cancer patients. Despite of proven high efficacy, Lapatinib didn’t show promising results in clinical responses due to acquired resistance.

Komurov et. al. (Mol. Systems.Biol., 2012) used network analysis along with experimental findings on cultured human breast cancer cell lines (SKBR3) and showed that a large part of acquired resistance to Lapatinib is due to  increased levels of activated states of glucose deprivation signaling network. The authors cultured ERB2-positive SKBR3 cells with increasing doses of Lapatinib, to make the control cell lines for analyzing their experimental results in comparison with (SKBR3- R),SKBR3-Resistant cells. Their Western Blot analysis showed that Lapatinib was successful to inhibit down signaling pathways to ERB2 and EGFR in both control and resistant cells however fails to induce apoptotic pathways in resistant cells when compared with the controlled cells.

To identify other factors which can influence the differential effects of Lapatinib on controlled and resistant cell lines, Komurov et. al. used a data biased random walk network analysis method called Netwalk (Komurov et. al. PLOS Comp Biol., 2010). Their method is data driven and based on comparative network analysis of gene expressions at different conditions rather than network analysis at one gene level. Their network analysis identified presence of high levels of genes which act as compensatory mechanisms for glucose deprivation (as shown in Figure 2 of the paper Komurov et. al. (2012) Figure 2). They showed validation of their network analysis findings using Western Blot analysis (as shown in Figure 3 of the paper Komurov et.al. (2012) Figure 3).

 

The authors’ results not only show a nice elegant way of finding new information using network analysis and experimental techniques together, but also points out an important concept which can be future of cancer therapy. Their results show that along with targeting mutated Oncogenes eg., EGFR and ERB2/HER2 as in case of Lapatinib, additional way of controlling the pathway of deprivation of glucose, can achieve better clinical responses for cancer patients with aggressive levels of cancer. Targeting glucose or pathways of glucose can be tricky, because of its ubiquitous links to many physiological functions, including metabolism. However, the levels at which these pathways need to be targeted to achieve certain positive responses at in-vitro, supported by systems biology methods, and then in-vivo studies can be informative.  Moreover, targeting many parts in the network in smaller amounts, along with targeted cancer drugs, may produce interesting results.

Sources:

Komurov et.al. (2012) : http://www.ncbi.nlm.nih.gov/pubmed/22864381

A News and Views on Lapatinib (2005) : http://www.emilywaltz.com/Herceptin.pdf

Komurov et.al. (2010) – Article published on methods of Netwalk : http://www.ncbi.nlm.nih.gov/pubmed/20808879

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Curator of an Investigator Initiated Study: Aviva Lev-Ari, PhD, RN

Inhibition of ET-1, ETA and ETA-ETB, Induction of NO production,  stimulation of eNOS and Treatment Regime with PPAR-gamma agonists (TZD): cEPCs Endogenous Augmentation for Cardiovascular Risk Reduction – A Bibliography

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Nebivolol is a long-acting, cardioselective beta-blocker currently licensed for the treatment of hypertension.

Nebivolol

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Author: Stephen J. Williams, PhD

     The finding that a substance, derived from vascular endothelium, that could control vascular tone and induce smooth muscle relaxation, led to the discovery of nitric oxide (NO) as a major physiological mediator (1) in many cell types and processes.  Other investigators, working with platelets, determined that nitric oxide is a potent inhibitor, via an autocrine pathway, of platelet aggregation and adhesion to the vessel wall (2).  Nitric oxide is also an important regulator of neurotransmission in the nonadrenergic-noncholinergic system in gastric tissue (3,4).   In addition nitric oxide is involved in macrophage-mediated cytotoxicity, (5)based on the observation the cytotoxic action of macrophages required external arginine, which summarily was converted to citrulline, releasing  the nitric oxide involved in the cell-killing process.  The above physiological responses represent highly regulated, short-term responses that, as seen with classical receptor-based agonists such as epinephrine, terminate once the agonist (NO) is removed.   Given the short half-life of nitric oxide and these rapid physiologic responses, nitric oxide has been given the role of a second messenger within the cell.

However nitric oxide also produces some physiologically, pharmacologically, and pathologically relevant changes, lasting longer time periods, which is the main focus of this article.  For example, nitric oxide is important in the development of long term potentiation (a model of learning and memory), neural plasticity, and neurite outgrowth, revealing nitric oxide can induce more permanent changes in cellular and tissue reorganization (6-9).  Other pathologic and toxicological responses to nitric oxide include cell death from excitotoxic amino acids (glutamate, kainite), oxidative stress, DNA and protein damage, and disease progression in Alzheimer’s disease, epilepsy, aging, apoptosis and Huntington’s chorea (10-12).  These effects persist over longer time frames than the effects which most second messenger systems occur.  These cellular changes can be described by biochemical changes on protein and nucleic acid modification, metabolism (13-15), DNA synthesis and replication, and molecular and organelle reorganization.  The pharmacological and toxicological implications of such cellular changes are inherent in the persistent effects of nitric oxide on biological systems.  The mechanism of nitric oxide-induced physiology and toxicology had been assumed to involve the stimulation of soluble guanylate cyclase, raising intracellular cGMP levels.  As discussed further, this mechanism of action does not account for all the actions of nitric oxide, especially in nitric oxide-induced pathologies.  Other mechanisms of action include post-translational modifications of proteins such as S-nitrosylations, ADP-ribosylations, and a unique nonenzymatic covalent attachment of NAD+ to the regulatory site of glyceraldehyde 3-phosphate dehydrogenase (GAPDH), a reaction specific to this dehydrogenase.  GAPDH is a true multifunctional protein involved in diverse cellular functions such as glycolysis, endocytosis, RNA processing and stability, DNA replication and repair, and involved in apoptosis.  GAPDH has been implicated in trinucleotide repeat neurodegenerative disorders such as Huntington’s disease, spinocerebellar ataxia, via binding to the polyglutamated forms of huntingtin and ataxin, protein modifications only seen in these respective diseases. GAPDH has also been implicated in Alzheimer’s disease as well, in genetic linkage studies as well as a β-amyloid precursor protein binding partner (for reviews see (16-20)).

Next to phosphorylation, ADP ribosylation and NAD+ modifications are the second most  common enzymatic  protein modifications in nature and regulates many cellular processes in nervous tissue, tumoral cell growth, cytoskeletal function, cell death and apoptosis, immune function, and bacterial cytotoxicity(21,22). These include poly ADP-ribosylations such as histones in the apoptotic process, and ADP-ribosylation of G-proteins by pertussis and cholera toxin. Interestingly, nitric oxide and other oxidants promote nonenzymatic ribosylation of proteins such as GAPDH.  Unlike the enzymatic reactions, this modification is covalent and generally considered irreversible and either involves nitrosylation of critical reactive cysteine residues or nitric oxide-mediated attachment of the whole NAD+ moiety, a reaction akin to aging of enzymes by reactive oxygen species.  There have been multiple intracellular targets of nitric oxide, with the result of inhibiting activity and/or protein interactions.  These include mitochondrial enzymes such as aconitase (23) and cytochrome oxidase (24), cytosolic enzymes such as cyclooxygenase and affect heme-containing proteins hemoglobin and myoglobin.  Such nitric oxide mediated effects on these systems were cGMP-independent, therefore independent of nitric oxide synthase.  The inhibition of GAPDH glycolytic activity by nitric oxide and NO-mediated NAD+ modification has been widely studied (21,25) and widely accepting to be important in nitric oxide mediated pathology (16,26-33).

So can this NO-NAD+ modification of GAPDH be useful as a therapeutic target for diseases such as Huntington’s, Alzheimer’s or other nitric oxide associated pathologies?   This is as much an intriguing idea as one fraught with caveats and technical issues.   First there is ample evidence that alterations of GAPDH structure/function exist in these neurodegenerative diseases and evidence that this type of modification may be important in the etiology of such diseases(34-41).

Second, as mentioned before, this modification is unique for GAPDH and would offer a disease-specific target(42).  Third, and most interesting, is the multifunctionality of GAPDH, therefore such modification has the possibility for affecting many processes involved in the disease progression.    However there is the big caveat and problem.  Such NO-NAD+ modifications are a covalent reaction, thought to be irreversible.  Studies on purified GAPDH reveal such modification is released by chemicals that can reduce the cysteine covalent bond such as HgCl2 or NaOH treatment(17).  However such treatment would be impractical for in-vivo use.  The ideal situation would be the discovery of an enzyme activity comparable to phosphatases which could enzymatically release the NO-NAD+ modification from GAPDH. A proof of concept experiment could involve creation of a genetically engineered enzyme capable of this reaction.  Therapeutic use of such an enzyme would depend of course on bioavailability.  Interestingly there has been evidence of cellular NO reductase activities, capable of removing the S-nitrosylation on reactive thiols.  Enzymes with denitrosylation activities include the thioredoxin system, superoxide dismutase, and xanthine oxidoreductase (34-40).  Possible therapeutic strategies may include regulation of these intracellular reductase activities.

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Other research paper on Nitric Oxide were published on this Scientific Web site as follows:

Discovery of nitric oxide and its role in vascular biology

Nitric Oxide and Platelet Aggregation

Inhaled NO in Pulmonary Artery Hypertension and Right Sided Heart Failure

Cardiovascular Disease (CVD) and the Role of agent alternatives in endothelial Nitric Oxide Synthase (eNOS) Activation and Nitric Oxide Production

Nitric Oxide in bone metabolism

Nitric oxide and signalling pathways

Rationale of NO use in hypertension and heart failure

Interaction of Nitric Oxide and Prostacyclin in Vascular Endothelium

Nitric Oxide has a ubiquitous role in the regulation of glycolysis -with a concomitant influence on mitochondrial function

Read Full Post »

Authour/Curator: Aviral Vatsa PhD MBBS

This post is in continuation with posts on basics of NO metabolism and its effect on physiology. Other topics are covered under the following posts.

  1. Nitric Oxide and Platelet Aggregation

  2. Inhaled NO in Pulmonary Artery Hypertension and Right Sided Heart Failure

  3. Cardiovascular Disease (CVD) and the Role of agent alternatives in endothelial Nitric Oxide Synthase (eNOS) Activation and Nitric Oxide Production

  4. Nitric Oxide in bone metabolism

  5. Nitric oxide and signalling pathways

  6. Rationale of NO use in hypertension and heart failure

Nitric oxide plays wide variety of roles in cardiovascular system and acts as a central point for signal transduction pathway in endothelium. NO modulates vascular tone, fibrinolysis, blood pressure and proliferation of vascular smooth muscles. In cardiovascular system disruption of NO pathways or alterations in NO production can result in preponderance to hypertension, hypercholesterolemia, diabetes mellitus, atherosclerosis and thrombosis. The three enzyme isoforms of NO synthase family are responsible for generating NO in different tissues under various circumstances. The endothelial NOS (eNOS) is expressed in endothelial cells, the inducible NOS (iNOS) is expressed in macrophages and neuronal NOS (nNOS) is expressed in certain neurons and skeletal muscle. Although the basic mechanism of action for NO production is the same for all three NOS isoforms, yet deficiencies of each one of them manifest differently or with varying severity in the body e.g. eNOS deficiency might lead to hypertension, more severe form of vascular injury to cerebral ischaemia and more severe form of atherosclerosis induced by hypercholesterolemic diet whereas nNOS deficiency might show less severe form of vascular injury to cerebral ischaemia and absence of iNOS might lead to reduced hypotension in septic shock.

Reduction in NO production is implicated as one of the initial factors in initiating endothelial dysfunction. This reduction could be due to

  • reduction in eNOS production

  • reduction in eNOS enzymatic activity

  • reduced bioavailability of NO

eNOS production is increased by physiological sheer stress on endothelial cells resulting from normal flow of blood along the arterial walls. Alterations in fluid sheer stress patterns e.g due to arterial constriction has been shown to have detrimental effect on eNOS production in endothelial cells. eNOS production is decreased by LDL, angiotensin II and TNF alpha. eNOS is tightly coupled enzyme and its activity can be significantly reduced by reduction in availability of cofactors and substrates, and by competitive inhibitors such as ADMA. Furthermore, uncoupling of eNOS can result in increased production of reactive species of both oxygen (superoxide) and nitrogen (peroxinitrite), which inturn can further reduce eNOS bioavailability. A range of therapeutic targets aim at increasing bioavailability of eNOS and they are summarised here.

Increased production of ROS and peroxinitrite is associated with endothelial dysfunction. Coronary heart disease risk factors may increase NOS mediated ROS formation and peroxinitrite formation. Such risk factors are associated with decreased NO production levels in the vasculature. However, recent data suggests that reduction in bioavailable NO levels in the arteries could be due to increased local oxidative stress rather than reduction in basal NO production.

Oxidation dependent mechanisms have been implicated in endothelial dysfunction. Oxidized low density lipo-proteins (oxLDL) play an important role in early endothelial dysfunction and hence early atherosclerosis (see figure below)

oxLDL can uncouple eNOS and reduced uptake of L-ariginine that can lead to production of superoxide radical oxygen. OxLDL can interfere with NO production and lead to altered NO signalling in the vascular endothelium. In addition, different arteries can be affected differently by these physiological changes e.g. oxLDL affects carotid artery and not the basilar artery thereby implying that intracranial arteries might be protected from endothelium-mediated oxidative injury and hence atherosclerosis. And finally NO can modulate oxidation mediated apoptotic signals in the vessel wall. Hence atherosclerosis can result from the derangement of fine imbalance between NO bioavailability and local oxidative stress.

Therapeutic targets:

There are various pathways being targeted to modulate the bioavailability of eNOS and NO such as

  1. Recoupling of eNOS to cofactors and substrates

  2. Modulation of eNOS activity by genomic and non genomic mechanisms e.g. by statins, ACE inhibitors, angiotensin II receptor blockers, calcium channel blockers , KLF2 modulators

  3. The suppression of inflammatory signalling pathways by PPAR-α activation

  4. Modulation of caeviolin mediated endocytosis and thus dissociation of eNOS from caevolin

The above list is not exhaustive, but this post here summarises recent developments in therapeutic targets in NO /eNOS regulation.

Based on:

Nitric Oxide and Pathogenic Mechanisms Involved in the Development of Vascular Diseases

Claudio Napoli and Louis J. Ignarro

Arch Pharm Res Vol 32, No 8, 1103-1108, 2009 , DOI 10.1007/s12272-009-1801-1 

 

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Endothelial Dysfunction, Diminished Availability of cEPCs,  Increasing  CVD Risk — Macrovascular Disease – Therapeutic Potential of cEPCs

Author and Investigator Initiated Study: Aviva Lev-Ari, PhD, RN

In normal conditions, the vascular endothelium produces and secretes substances that modulate vascular tone and protect the vessel wall from inflammatory cell infiltration, thrombus formation, and vascular smooth muscle cell proliferation (Rubanyi, 1993). Pathologic conditions such as hyperlipidemia, hyperglycemia, and hypertension impair the ability of the vascular endothelium to produce vasodilatory and anti-adhesion moieties and increase the production of vasoconstrictor, proadhesion, and pro-thrombotic molecules, leading to elevated vascular tone, enhanced cell adhesion, proliferation of media smooth muscle cells, and propensity toward thrombosis (Drexler & Hornig, 1999),(Endemann & Schiffrin, 2004). Endothelial cell loss and turnover are accelerated in the presence of hemodynamic and biochemical alterations and are a prominent feature of vascular injury resulting from percutaneous coronary intervention (Bennett & O’Sullivan, 2001).

The loss of endothelial function and integrity sets in motion the cascade of events that lead to atherosclerosis and restenosis after percutaneous revascularization (Ross, 1999),(Dzau et al., 2002). Processes of mobilization, growth, differentiation, recruitment, homing, replication and migration characterize cEPCs from the initial cell division of stem cells to cell apoptosis. What are the factors influencing cEPC mobilization, growth, differentiation, recruitment, mobilization, homing, replication and migration?

Physiological Factors

Chemokines

SCF-1, G-CSF, GM-CSF

Effect on cEPCs: recruitment, mobilization (Takahashi et al., 1999), (Kong et al., 2004a), (Kocher et al. 2001), (Shi et al., 1998), (Cho et al., 2003),(Orlic et al., 2001),(Bhattacharya et al., 2000), (Shi et al, 2002)

SDF-1

Effect on cEPCs: recruitment, mobilization, homing (Yamaguchi et al., 2003),(Powell et al., 2005),(Askari et al., 2003), (Hiasa et al., 2004),(George et al., 2003),(George et al., 2004),(Massa et al., 2005)

Cytokines / Growth Factors

FGF, VEGF, PIGF

Effect on cEPCs: mobilization, differentiation (Kalka et al., 2000a),(Ashara et al., 1997),(Kalka et al., 2000b)

                                  Angiopoietin, PDGF

Effect on cEPCs: differentiation

Hormones

Erythropoietin

Effect on cEPCs: mobilization, replication (Heeschen et al., 2003), (George, et. al., 2005).

Estrogen

Effect on cEPCs: mobilization (Strehlow et al., 2003), (Imanishi et al., 2005)

Signaling molecules

NO, Akt

Effect on cEPCs: mobilization, differentiation(Aicher et al., 2003).

 

Pharmacological Factors

3-HMC-CoA Inhibitors (statins)

Effect on cEPCs: mobilization, migration, homing (Werner et al., 2003),(Vasa et al., 2001a),(Walter et al., 2002),(Dimmeler et al., 2001),

(Llevadot et al., 2001),(Spyridopoulos et al., 2004)

             PPAR-gamma Agonists

Effect on cEPCs: mobilization, differentiation (Verma & Szmitko, 2006), (Andrew et al., 2004)

Physical Factors

 

            Exercise, hypoxia

Effect on cEPCs: mobilization (Laufs et al., 2003),(Kleinman et al., 2005),(Goon et al., 2006)

Pathological Factors

Coronary artery disease (CAD)

Effect on cEPCs: mobilization, homing (Kalka et al., 2000a),(Vasa et al., 2001b),(Heeschen et al., 2004)

Acute MI

Effect on cEPCs: mobilization, homing (Shintani et al., 2001),(Valgimigli et al., 2004),(Massa et al., 2005)

Peripheral limb ischemia

Effect on cEPCs: mobilization, homing (Takahashi et al., 1999),(Iwaguro et al., 2002),(Asahara et al., 1997),(Kalka et al., 2000b)

Vascular injury and inflammation

Effect on cEPCs: mobilization, homing (Ross, 1999),( Losordo et al., 2003), (Dimmeler & Zeiher, 2004),(Werner et al., 2003),(Verna et al, 2004).

EPC transplantation has been shown to induce new vessel formation in ischemic myocardium and hind limb (Kalka et al., 2000c),(Kawamoto et al, 2001),(Kocher, 2001) and to accelerate re-endothelialization of injured vessels and prosthetic vascular grafts in humans and in various animal models (Kocher, 2001),(Griese et al., 2003) demonstrating their therapeutic potential as a cell-based strategy for rescue and repair of ischemic tissues and injured blood vessels. Furthermore, EPCs are amenable to genetic manipulation, underscoring their usefulness as vectors for local delivery of therapeutic genes (Griese et al., 2003),(Kong et al., 2004b), (Iwaguro, 2002)

   Clinical Frontiers and Therapeutic Applications of cEPCs

  • Angiogenesis
  • Neovascularization of Artherosclerotic Plaque
  • Risk Factors impairing Collateral Development
  • Inhibitory Effects of Hypercholesterolemia
  • Bone Marrow Cells: Supporting cells in vascular growth processes
  • Inverse Relations: cEPCs and Risk of Macrovascular Events
  • New Stenting Technology:

 

  1.    Stents eluting Nitric Oxide (Verma and Marsden, 2005)
  2.    Stents coated with antiboby specific (anti-CD34) to the EPCs antigen cell     (Chadwick, 2006),(Aoki et al., 2005)
  3.    EPC-covered intravascular stents deployed for prevention of stent  thrombosis and restenosis as well as for rapid  formation of normal tissue architecture (Shirota et al., 2003).

 

  1. Table 1:            Alterations in number and function of cEPCs Disease Characterization and Suitability for ElectEagle an Endogenous Augmentation Method for cEPCs number (not for cEPCs function)

Disease Type

(Dzau et al., 2005)

Number

of

 cEPCs

Function

of

cEPCs

References

Disease Suitability for Endogenous Augmentation of cEPCs
Myocardial
     CAD

down

 down

(Kalka et al., 2000a),(Shintani et al., 2001),(Vasa et al., 2000b),(Hill et al., 2003),(Heeschen et al., 2004)

yes

     CHF

down

down

(Valgimigli et al.,2004),(Massa et al., 2005)

yes

     Unstable angina

down

unknown

(George et al., 2004)

yes

     MI

up

down

(Massa et al., 2005)

No

Vascular
     Atherosclerosis

down

down

(Vasa et al., 2001b),(Heeschen, 2004)(Lusis, 2000)

yes

     Acute Vascular injury and inflammation

up

unknown

(Fuujiyama et al.,2003)(Werner et al., 2003),(Walter et al., 2002),(Strehlow et al., 2003),(Shi et al., 1998),(Gill et al., 2001),

(Chu et al., 2003)

No

     PeripheralLimb ischemia

up

unknown

(Takahashi et al.,1999),(Iwaguro et al., 2002),(Asahara et al., 1997),(Asahara et al., 1999),(Kalka et al., 2000b)(Segal at al., 2006)

No

     Transplantarteriopathy

down

unknown

(Simper at al., 2003)

Yes

     In-stentrestenosis

down

unknown

(George et al., 2003)

yes

     Hypertension

unknown

unknown

No

     Hyperlipidemia

down

down

(Rauscher et al., 2003)

yes

Diabetes

down

down

(Loomans et al.,2004),(Tepper et al., 2002)

yes

Renal Failure
     Hemodialysis

down

down

(Choi et al., 2004)

yes

Source: original table created by Lev-Ari, A.

Based on Table 1, above, Lev-Ari, A. concluded that four Cardiovascualr diseases are NOT candidates for cEPCs therapeutic treatment

List of Disease unsuitable for ElectEagle an Endogenous Augmentation Method for  cEPCs includes:

  • Myocardial infarction
  • Acute Vascular injury and inflammation
  • Peripheral Limb ischemia
  • Hypertension

Table 2:           Therapeutic Angiogenesis Effects achieved by Cell-Based Therapy: Donor, Human; Recipient, Autologous;

Diagnosis, Myocardial Infarction

 

Therapeutic

Effect

Measured

Effect

Method of Delivery

Type and

Source of Cells

References

EjectionFruction

Up

(Stamm et al.,2003)

(Assmus et al., 2002),

(Britten et al., 2003),

(Schachinger et al., 2004),

(Wollert et al., 2004)

(Fernandez-Aviles

et al., 2004),

(Kang et al., 2004)

 

Infarct border

(Stamm et al., 2003)

CD133

(Stamm et al., 2003),

 

BM

(Stamm et al., 2003)

(Stamm et al., 2003)

Collateral flow (SPECT)

Up

(Stamm et al., 2003)

Infarct size

Down

(Strauer et al., 2002)

Intracoronary Balloon

Catheter

(Strauer et al., 2002)

BM

(Strauer et al., 2002)

(Strauer et al., 2002)

Wall motion

Up

(Strauer et al., 2002)

Contractility

Up

(Assmus et al., 2002),

(Britten et al., 2003),

(Schachinger et al., 2004),

(Wollert et al., 2004)

Intracoronary Balloon

Catheter

(Assmus et al., 2002),

(Britten et al., 2003),

(Schachinger et al., 2004),

(Wollert et al., 2004)

BM

PB

MNC

(Assmus et al., 2002),

(Britten et al., 2003),

(Schachinger et al., 2004),

(Wollert et al., 2004)

(Assmus et al., 2002),(Britten et al., 2003),(Schachinger et al., 2004),

(Wollert et al., 2004)

Myocardial perfusion

Up

(Assmus et al., 2002),

(Britten et al., 2003),

(Schachinger et al., 2004),

(Wollert et al., 2004)

Remodeling

Down

(Assmus et al., 2002),

(Britten et al., 2003),

(Schachinger et al., 2004),

(Wollert et al., 2004)

LV wall thickness

Up

(Fernandez-Aviles et al., 2004)

Intracoronary w/PCA

(Fernandez-Aviles et al., 2004)

CD34+

CD117+

AC133+

(Fernandez-Aviles et al., 2004)

End-systolic (ESV) volume

Down

(Fernandez-Aviles et al., 2004)

Exercise time

Up

(Kang et al., 2004)

Intracoronary

G-CSF

CD34+

(Kang et al., 2004)

 

Table 3:          

Therapeutic Angiogenesis Effects achieved by Cell-Based Therapy: Donor, Human; Recipient, Autologous;

Diagnosis, Myocardial Ischemia – Unstable Ischemia

 

Therapeutic

Effect

Measured

Effect

Method of Delivery

Type and

Source of Cells

References

Ejection Fruction

Up

(Perin et al., 2003),

(Tse et al., 2003)

Transendocardial with NOGA mapping

MNCs

(Perin et al., 2003),

(Tse et al., 2003)

BM

(Perin et al., 2003),

(Tse et al., 2003)

(Perin et al., 2003),

(Tse et al., 2003)

Anginal episodes

Down

(Perin et al., 2003),

(Tse et al., 2003)

Wall thickening

Up

(Perin et al., 2003),

(Tse et al., 2003)

Wall motion

Up

(Perin et al., 2003),

(Tse et al., 2003)

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Vascular Medicine and Biology: CLASSIFICATION OF FAST ACTING THERAPY FOR PATIENTS AT HIGH RISK FOR MACROVASCULAR EVENTS Macrovascular Disease – Therapeutic Potential of cEPCs

 

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

 

Classification of Fast Acting Therapies for Patients at High Risk for Macrovascular events

Macrovascular Disease – Therapeutic Potential of cEPCs

 

The two leading therapy classes are:

  1. Cell-based Therapies for angiogenesis and myocardial regeneration
  2. Intracoronary Delivery of Autologous Bone Marrow originating cells to restore Ischemic Tissue

The European Meeting on Vascular Medicine and Biology is a biannual international conference. The 3rd European Meeting on Vascular Medicine and Biology, took place in September 2005 and the next conference will be in 2007. All abstract presentations are published in Supplement 2, JOURNAL OF VASCULAR RESEARCH, Volume 42, 2005.

Review of 355 abstracts of posters presented at the conference has identified the following twenty Research Frontiers in Vascular Biology and Vascular Disease.

One abstract is of special interest to the line of research which focus on endogenous augmentation of cEPCs and to reduction of CVD risk by endogenous induction of regression of atherosclerotic plaques. It was selected by being judged to have the highest potential for commercialization and the potential to replace several therapeutic agents with higher efficacy.

P119 IgG1 antibodies against oxLDL epitopes induce regression of advanced atherosclerotic plaques in LDLR-/- APOBEC mice.

A. Schiopu1, B. Jansson2, P.K. Shah3, R. Carlsson3, J. Nilsson1, G. Nordin Fredrikson1Department of Medicine, Malmö University Hospital, Lund University, Malmö, SE; 2 BioInvent International AB, Lund, SE; 3 Atherosclerosis Research Center, Cedars-Sinai Medical Center, UCLA School of Medicine, Los Angeles, US.

Objective: The purpose of our study was to assess the effects of recombinant human IgG1 antibodies against specific oxLDL epitopes on advanced atherosclerotic lesions in mice.

Methods: We have tested 2 recombinant human IgG1 antibodies directed to malondialdehyde (MDA)-modified ApoB-100 peptide sequences. Three weekly 1 mg antibody doses were injected intraperitoneally starting at 25 weeks in LDLR-/-Apobec mice, which were then sacrificed at 29 weeks of age. IgG1 antibodies directed against fluorescein isothiocyanate, which do not bind to either native or oxidized LDL, and a

baseline group sacrificed at 25 weeks of age, to asses plaque status before immunization, were used as controls.

Results: Both antibodies induced a significant regression of already present atherosclerotic plaques in the descending aorta as compared to baseline. This effect was not present in the isotype control group. The changes did not depend on alterations in weight, cholesterol or triacylglycerol content in mice plasma.

Conclusions: The present study suggests that antibody treatment has the ability to reduce the extent of already present, advanced atherosclerotic lesions. Passive immunization with antibodies directed against oxLDL epitopes might constitute a future fast acting therapy for patients at high risk for acute cardiovascular events.

Twenty Research Frontiers in Vascular Medicine of Human Endothelium

 

Research Frontiers in Vascular Biology and Vascular Disease 

 

  

International Research Projects

Stem Cell biology Embryonic stem cells in cardiovascularrepairEarly differentiation of human endothelial progenitor cellsVessels transmigration of stem cells depends on activation of the endothelium.

Interaction of embryonal endothelial progenitor cells with platelets

Role of smooth muscle cell progenitors on atherosclerotic plaque development and stability.

 

Ischemia  and Reperfusion Connexin 43 and myocardial ischemia/reperfusioninjuryEndothelialreperfusion injuryA possible role for hypoxia-inducible factor 1• in protection against reperfusion injury

 

Genetic Basis of Vascular Disease Cardiovascular genomics and oxidative stressNox1 mediates basic fibroblast growth factor induced vascular smooth muscle cell migrationReactive oxygen species upregulate NOX4, but not NOX2, in endothelial cells

Induction of prolyl hydroxylase 2 by nitric oxide interferes with the hypoxia induced feedback loop of HIF-1• regulation

Protein disulfide isomerase is a central

regulator of NADPH oxidase activity

 

Inflammation Inflammatory mediatorsofvascularInflammationIsoprostanes inhibit in vitro migration and tube formation of endothelial cells via the thromboxane A2 receptor.

Heme oxygenase-1-dependent and

-independent regulation of angiogenic and inflammatory genes expression in human microvascular endothelial cells

 

Tissue Engineering Engineered heart tissueEndothelial tissue engineeringBlood vessel growth and remodeling in in-vivo tissue engineering

The effects of cyclic strain on the cytoskeleton of vascular smooth muscle cells

 

Atherosclerosis Imaging Experimental In vivo imaging ofatherosclerosisHoming ofCD34+ progenitor cells to sites ofangiogenic tube formation using real-time video microscopy.Relation between lipoprotein(a) and fibrinogen and serial intravascular ultrasound plaque progression in left main stems

Cardiovascular Development Controlled by Fluid Shear Stress. A Functionomic Approach.

Dynamics in microvascular alterations in UCP/DTA mice in vivo – from metabolic syndrome to diabetes mellitus type 2

Vascular Cell Signaling TGF-beta in endothelial cell functionandvascular developmentVEGF signaling

 

Atherosclerosis (Clinical / In Vivo) Pathophysiology of cigarette smoking-inducedatherosclerosisThe homeostatic benefits of plaque ruptureEarly coronary atherogenesis as a

consequence of chronic in-vivo proteasome inhibition.

 

Renin-Angiotensin System ACE inhibitorsstimulate endothelialCOX-2expression by aJNK-dependent ACE signalling pathway.A new ACE on the table: ACE2 expression in human atherosclerosis

Role of the ACE gene in renal and vascular complications of diabetes mellitus, experimental study in the mouse.

Bone marrow molecular alterations after

myocardial infarction: impact on endothelial progenitor cells and modulation by ACE inhibition or statin treatment.

Anti-inflammatory properties of Ramiprilat: reduction of monocyte adhesion to angiotensin II-stimulated endothelium is associated with AT1 downregulation.

Activation of phospholipase D by angiotensin II in HUVECS and HMVECS

Pathogenesis of Atherosclerosis Metalloproteinases in vascular pathologywhat we know and what we don’t know.
Stem Cell Therapy Functional assessment of circulatingcellsHuman fetal vascular progenitor cellsaccelerate the healing of ischemic diabetic ulcers

Peri-infarct gene transfer of human tissue kallikrein gene prevents left ventricle dysfunction by stimulating

angiogenesis/arteriogenesis and cardiac stem cell activation and by inhibiting cardiomyocyte apoptosis.

 

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Cardiovascular Disease (CVD) and the Role of Agent Alternatives in endothelial Nitric Oxide Synthase (eNOS) Activation and Nitric Oxide Production

 

Curator and Investigator Initiated Study: Aviva Lev-Ari, PhD, RN

Agent Alternative #1: Niacin (Vitamin B3), Fibrates and Genistein

Low HDL levels predict an increased risk of coronary artery disease independently of LDL levels, and 60–70% of major cardiovascular events cannot be prevented with current approaches focused on LDL, such as statin therapy (Werner et al., 2003), (Vasa et al., 2001a), (Walter et al., 2002), (Dimmeler et al., 2001), (Llevadot et al., 2001), (Spyridopoulos et al., 2004). In addition, low HDL levels are particularly common in males with early-onset atherosclerosis (Wilson et al., 1988). Based on these observations, prevention trials have been performed with agents such as niacin and fibrates, which raise HDL, and they indicate that modest increases in HDL independently yield a significant reduction in cardiovascular events (Rubins et al., 1999), (Brown et al., 2001), (Boden, 2000). Thus, there is compelling evidence that HDL is not solely a marker of lower risk of cardiovascular disease but instead is a mediator of vascular health.

Genistein – Phytoestrogens have received widespread attention over the past few years because of their potential for preventing some highly prevalent chronic diseases, including cardiovascular disease, osteoporosis, and hormone-related cancers. Genistein, the primary soy-derived phytoestrogen, has various biological actions (Liu et al., 2004), including a weak estrogenic effect and inhibition of tyrosine kinases. Genistein acutely stimulates Nitric Oxide synthesis in vascular Eendothelial cells by a cyclic adenosine 5′-monophosphate-dependent mechanism (Liu et al., 2004). The intracellular signaling pathways for activation of eNOS by genistein were independent of PI3K/Akt or ERK/MAPK but depended on the cAMP/PKA cascade. In addition, the genistein action on eNOS was not inhibited by an ER antagonist and was unrelated to tyrosine kinase inhibition.

Studies demonstrate that genistein has antiatherogenic effects and inhibits proliferation of vascular endothelial and smooth muscle cells. Data from animal and in vitro studies suggest a protective role of genistein in the vasculature. Studies investigating its effect on plasma lipid profiles show either a moderate positive effect or a neutral effect. Some human intervention studies suggest a beneficial effect on atherosclerosis (Anthony et al., 1998), markers of cardiovascular risk (van der Schouw et al., 2000), vasomotor tone (Walker et al., 2001), vascular endothelial function (Squadrito et al., 2003), and systemic arterial compliance (Nestel et al., 1997). Genistein also inhibits human platelet aggregation in vitro (Dobrydneva et al., 2002), (Gottstein et al., 2003) and decreases TNF-induced monocyte chemoattractant protein-1 secretion in human vascular endothelial cells (Gottstein et al., 2003). Other studies suggest that genistein may induce vascular relaxation by cAMP-dependent mechanisms (Satake and Shibata, 1999) or inhibition of tyrosine kinases (Duarte et al., 1997). In vitro studies elucidating the cellular or molecular mechanisms of the genistein action on vascular cells are lacking.

NO produced is a potent vasodilator and also has anti-inflammatory (Yu et al., 2002), antiatherogenic (Shin et al., 1996), antithrombotic (Alonso and Radomski, 2003), and antiapoptotic properties (Kotamraju, 2001). Liu et al., (2004), hypothesized that genistein directly regulates vascular function through stimulation of eNOS and NO synthesis from vascular endothelial cells. To test this hypothesis, they focused on the acute effects of genistein on eNOS and the cellular signaling related to this effect. They specifically tested the protein kinase A and tyrosine kinase pathways because these have been proposed in previous vascular studies (Satake and Shibata, 1999), (Duarte et al., 1997).

In Liu et al., (2004) study, genistein acted directly on BAECs and HUVECs to activate eNOS and NO production through nongenomic mechanisms in whole vascular endothelial cells. The intracellular signaling pathways for activation of eNOS by genistein were independent of PI3K/Akt or ERK/MAPK but depended on the cAMP/PKA cascade. In addition, the genistein action on eNOS was not inhibited by an ER antagonist and was unrelated to tyrosine kinase inhibition. The findings suggest a molecular mechanism that may underlie some of the beneficial cardiovascular effects that have been proposed for genistein.

Agent Alternative #2: Serotonin, 5-HT

5-hydroxytryptamine evokes endothelial nitric oxide synthase activation

eNOS activation in microvascular endothelial bEnd.3 cell. NO plays an important role in the dynamic regulation of the intercellular junctions of the endothelium. They have shown that eNOS is enriched at these junctions, which is a prerequisite for its activation by agonists. At the junctions, eNOS co-localizes with PECAM-1, but not with VE-cadherin and plakoglobin. The nature of the molecular mechanisms that lead to the enrichment of eNOS at intercellular junctions, and which allow these junctions to be regulated by NO, remains to be determined. Data from three experiments are presented as means±S.D. ‘D’ represents l-NAME-dependent (i.e. NOS-mediated) nitrite formation (Grovers et al., 2002).

Comparative analysis of eNOS efficacy on NO production. 5-HT is second in effectiveness.

Agonist Nitrite (nmol·mg of protein-1) -l-NAME +l-NAME D None 0.31±0.05 0.08±0.05 0.23±0.07

A23187 (5µM) 1.44±0.06 0.35±0.06* 1.09±0.08†

Acetylcholine (1µM) 0.83±0.12 0.06±0.09 0.77±0.15†

5-Hydroxytryptamine (1µM) 0.94±0.07 0.05±0.05 0.88±0.08†

VEGF (20ng/ml) 0.60±0.03 0.10±0.03 0.50±0.05†

Bradykinin (1µM) 0.28±0.06 0.04±0.05 0.24±0.07

Histamine (10µM) 0.36±0.04 0.08±0.05 0.28±0.06

Activation of endothelial nitric oxide synthase (eNOS) resulted in the production of nitric oxide (NO) that mediates the vasorelaxing properties of endothelial cells. The goal of this project was to address the possibility that 5-hydroxytryptamine (5-HT) stimulates eNOS activity in bovine aortic endothelial cell (BAEC) cultures. McDuffie et al., (1999, 2000) tested the hypothesis that 5-HT receptors mediate eNOS activation by measuring agonist-stimulated [3H]L-citrulline ([3H]L-Cit) formation in BAEC cultures. They found that 5-HT stimulated the conversion of [3H]L- arginine ([3H]L-Arg) to [3H]L-Cit, indicating eNOS activation. The high affinity 5-HT1B receptor agonist, 5-nonyloxytryptamine (5-NOT)- stimulated [3H]L-Cit turnover responses were concentration-(0.01 nM to 100 microM) and time-dependent. Maximal responses were observed within 10 min following agonist exposures. These responses were effectively blocked by the 5-HT1B receptor antagonist, isamoltane, the 5-HT1B/5-HT2 receptor antagonist, methiothepin, and the eNOS selective antagonists (0.01-10 microM): L-Nomega -monomethyl-L-arginine (L-NMMA) and L-N omega-iminoethyl-L-ornithine (L-NIO). Their findings lend evidence of a 5-HT1B receptor/eNOS pathway, accounting in part for the activation of eNOS by 5-HT.

3 orpholinosyndnonimine inhibits 5-hydroxytryptamine induced phosphorylation of nitric oxide synthase in endothelial cells.

5-Hydroxytryptamine (5-HT) is a vasoactive substance that is taken up by endothelial cells to activate endothelial nitrite oxide synthase (eNOS). The activation of eNOS results in the production of nitric oxide (NO), which is responsible for vasodilation of blood vessels. NO also interacts with superoxide anion (O2*-) to form peroxynitrite (ONOO-), a potent oxidant that has been shown to induce vascular endothelial dysfunction (Richardson et al., 2003). They examined the ability of 3-morpholinosyndnonimine (SIN-1), an ONOO- generator, to inhibit 5-HT-induced phosphorylation of eNOS in cultured bovine aortic endothelial cells (BAECs). They observed that 5-HT phosphorylates Ser1179 eNOS in a time- and concentration-dependent manner. Maximum phosphorylation occurred at 30 sec using a concentration of 1.0 microM 5-HT. BAECs treated with SIN-1 (1-1000 microM) for 30 min showed no significant increase in eNOS phosphorylation. However, 5-HT-induced eNOS phosphorylation was inhibited in cells treated with various concentrations of SIN-1 for 30 min and stimulated with 5-HT. These data suggest that an increase in ONOO- as a result of an increase in the production of O2*-, may feedback to inhibit 5-HT-induced eNOS phosphorylation at Ser1179 and therefore, contribute to endothelial dysfunction associated with cardiovascular diseases.

Agent Alternative #3: Nebivolol

A Third-Generation ß-Blocker that Augments Vascular Nitric Oxide Release. (Broeders et al., 2000), (Brugada et al., 2001), (Dessy et al., 2005), (Iaccarino et al., 2002), (Jordan et al., 2001), (Kalinowski et al., 2003), (Mason et al., 2005), (McEniery et al., 2004), (Mollnau et al., 2003), (Mukherjee et al., 2004), (Ritter et al., 2006).

In vivo metabolized nebivolol increases vascular NO production. This phenomenon involves endothelial ß2-adrenergic receptor ligation, with a subsequent rise in endothelial free [Ca2+]i and endothelial NO synthase–dependent NO production. This may be an important mechanism underlying the nebivolol-induced, NO-mediated arterial dilation in humans. Nebivolol is a ß1-selective adrenergic receptor antagonist with proposed nitric oxide (NO)–mediated vasodilating properties in humans. In this study, they explored whether nebivolol indeed induces NO production and, if so, by what mechanism. they hypothesized that not nebivolol itself but rather its metabolites augment NO production (Broeders et al., 2000).

Dose and Time Concentration for Agents affecting endothelial Nitric Oxide Synthase (eNOS) Activation and Nitric Oxide Production 

  • time concentration dependence on eNOS reuptake
  • dose concentration dependence on NO production

In the literature we found evidence for dose concentration dependence manner

Ach, Histamine, Genistein, ACEI, Fenofibrates, NEBIVOLOL, Calcium channel blocker, Enzyme S-nitrosylation

In the literature we found evidence for time concentration dependence manner:

Ach, BRL37344, a 3-adrenoceptor agonist

In the literature we found evidence for time and dose concentration dependence manner:

Histamine

NO, eNOS AgonistsStimulate phosphorylation of eNOS at serine 1177, 1179, 116 Conversion of L-arginine toL-citrulline time concentration dependence manner dose concentration dependencemanner time and dose dose (nmol·mg of protein-1)Grovers et al., (2002)
A23187 (5µM)
Acetylcholine Xu et al., (2002) Sanchez et al., (2006) (1µM)
5-Hydroxytryptamine (1µM)
VEGF ( (20ng/ml)
Bradykinin (1µM)
Histamine McDuffie et al., (1999) McDuffie et al., (2000) (10µM)
genistein Liu et al., (2004) (1µM)
ACEI Skidgel et al., (2006)
Fenofibrates Asai et al., (2006)
BRL37344, a 3-adrenoceptor agonist Pott et al., (2005)
NEBIVOLOLß1-selective adrenergic receptor antagonist with nitric oxide (NO)–mediation for vasodilation Ritter et al., (2006)
Calcium channel blocker Church and Fulton, (2006),
Enzyme S-nitrosylation Erwin et al., (2006)

Proposed integration plan of Nebivolol with CVD patients’ current medication regimen for selective medical diagnoses

Blood Pressure Medicine:

Beta blockers, Verapamil (Calan), Reserpine (Hydropes), Clonidine (Catapres), Methyldopa (Aldomet)

Diuretics:

Thiazides, Spironolactone (Aldactone), Hydralazine

Antidepressants:

Prozac, Lithium, MOA’s, Tricyclics

Stomach Medicine:

Tagamet and Zantac, plus other compounds containing Cimetidine and Ranitidine or associated compounds in Anticholesterol Drugs

Antipsychotics:

Chlorpromazine (Thorazine), Pimozide (Orap), Thiothixine (Navane), Thiordazine (Mellaril), Sulpiride, Haloperidol (haldol), Fluphenazine (Modecate, Prolixin)

Heart Medicine:

Clofibrate (Atromid), Gemfibrozil, Diagoxin

Hormones:

Estrogen, Progesterone, Proscar, Casodex, Eulexin, Corticosteroids Gonadotropin releasing antagonists: Zoladex and Lupron

Cytotoxic agents:

Cyclophosphamide, Methotrexate, Roferon Non-steroidal anti-inflammatories

Others-

Alprazolam, Amoxapine, Chlordiazepoxide, Sertraline, Paroxetine, Clomipramine, Fluvoxamine, Fluoxetine, Imipramine, Doxepine, Desipramine, Clorprothixine, Bethanidine, Naproxen, Nortriptyline, Thioridazine, Tranylcypromine, Venlafaxine, Citalopram.

INTERACTIONS for Nebivolol

Calcium Antagonists:

Caution should be exercised when administering beta-blockers with calcium antagonists of the verapamil or diltiazem type because of their negative effect on contractility and atrio-ventricular conduction. Exaggeration of these effects can occur particularly in patients with impaired ventricular function and/or SA or AV conduction abnormalities. Neither medicine should therefore be administered intravenously within 48 hours of discontinuing the other.

Anti-arrhythmics:

Caution should be exercised when administering beta-blockers with Class I anti-arrhythmic drugs and amiodarone as their effect on atrial conduction time and their negative inotropic effect may be potentiated. Such interactions can have life threatening consequences.

Clonidine:

Beta-blockers increase the risk of rebound hypertension after sudden withdrawal of chronic clonidine treatment.

Digitalis:

Digitalis glycosides associated with beta-blockers may increase atrio-ventricular conduction times. Nebivolol does not influence the kinetics of digoxin & clinical trials have not shown any evidence of an interaction.

Special note: Digitalisation of patients receiving long term beta-blocker therapy may be necessary if congestive cardiac failure is likely to develop. The combination can be considered despite the potentiation of the negative chronotropic effect of the two medicines. Careful control of dosages and of individual patient’s response (notably pulse rate) is essential in this situation.

Insulin & Oral Antidiabetic drugs:

Glucose levels are unaffected, however symptoms of hypoglycemia may be masked.

Anaesthetics:

Concomitant use of beta-blockers & anaesthetics e.g. ether, cyclopropane & trichloroethylene may attenuate reflex tachycardia & increase the risk of hypotension

CVD patients’ current medication regimen for selective medical diagnoses

Medical Diagnoses Current medication regiment eNOS agonists &production stimulation of NO PPAR-gamma agonist (TZD) as eNOS stimulant
CAD patients Beta blockers, ACEI, ARB, CCB, Diagoxin, Coumadin yes
Endothelial Dysfunction in DM patients with or without Erectile Dysfunction Insulin yes yes
Atherosclerosis patients: Arteries and or veins AntihypertensiveCoumadin yes yes
pre-stenting treatment phase Beta blockers, Verapamil (Calan), Reserpine (Hydropes), Clonidine (Catapres), Methyldopa (Aldomet) yes
post-stenting treatment phase Antiplatelets yes
if stent is a Bare Mesh stent (BMS) CoumadinBeta blockers yes
if stent is Drug Eluting stent (DES) antibiotics
if stent is EPC antibody coated yes
post CABG patients CoumadinBeta blockers, Verapamil (Calan), Reserpine (Hydropes), Clonidine (Catapres), Methyldopa (Aldomet) yes
CVD patients on blood thinner drugs Coumadin yes

Conclusions

  •  Most favorable and unexpected to us was finding in the literature new indications for TDZs as stimulators of eNOS, in addition to the new indication for atherosclerosis besides the classic indication in pharmacology books, being in the reduction of insulin resistance.
  •  Most favorable and unexpected to us was finding in the literature new indications for beta blockers as NO stimulant, nebivolol, a case in point, thus, fulfilling two indications in one drug along the direction of the study to identify eNOS agonists. Nebivolol is a vasodilator, thus functions as an antihypertensive.

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Nebivolol is a long-acting, cardioselective beta-blocker currently licensed for the treatment of hypertension.

http://www.saha.org.ar/noticias/nebivolol2.htm  – retrieved on 6/20/2006

Nebivolol

http://www.intekom.com/pharm/adcock/nebilet.html – retrieved on 6/20/2006

Nestel PJ, Yamashita T, Sasahara T, Pomeroy S, Dart A, Komesaroff P, Owen A, Abbey M, (1997). Soy isoflavones improve systemic arterial compliance but not plasma lipids in menopausal and perimenopausal women. Arterioscler Thromb Vasc Biol 17:3392–3398.

Nofer J-R, et al., (2004). HDL induces NO-dependent vasorelaxation via the lysophospholipid receptor S1P3. J. Clin. Invest.,113:569–581.

Nolte MS and JH Karam, (2004). Pancreatic Hormones & Antidiabetic Drugs. Chapter 41 in Katzung, BG., Basic & Clinical Pharmacology. McGraw-Hill, 9th Edition, pp.693-715, in particular, Thiazolidinediones, pp.709-710, 713.

Polikandriotis JA, Mazzella LJ, Rupnow HL, Hart CM, (2005). Peroxisome proliferator-activated receptor gamma ligands stimulate endothelial nitric oxide production through distinct peroxisome proliferator-activated receptor gamma-dependent mechanisms.Arterioscler Thromb Vasc Biol., 25(9):1810-6. Epub 2005 Jul 14.

Pott C, Steinritz D, Bölck B, Mehlhorn U, Brixius K, Schwinger RHG, BlochW., (2006). eNOS translocation but not eNOS phosphorylation is dependent on intracellular Ca2+ in human atrial myocardium. Am J Physiol Cell Physiol 290: C1437-C1445.

Ramet ME, et al., (2003). High-density lipoprotein increases the abundance of eNOS protein in human vascular endothelial cells by increasing its half-life. J. Am. Coll. Cardiol., 41:2288–2297.

Reid, Ian A., (2004). Vasoactive Peptides. Chapter 17 in Katzung, BG., Basic & Clinical Pharmacology. McGraw-Hill, 9th Edition, pp. 281 – 297, in particular, Endothelins, pp. 290-293.

Richardson SM, Maleque MA, Motley ED., (2003). 3-Morpholinosyndnonimine inhibits 5-hydroxytryptamine-induced phosphorylation of nitric oxide synthase in endothelial cells. Cell Mol Biol., 49(8):1385-1389.

Ritter JM, Ferro A, Chowienczyk PJ., (2006). Relation between beta-adrenoceptor stimulation and nitric oxide synthesis in vascular control. Eur J Clin Pharmacol., 62 (Supplement 13):109-113.

Rosenzweig A., (2005). Circulating Endothelial Progenitors – Cells as Biomarkers. NEJM., 353;10: 1055-1057.

Rubins et al., (1999). Gemfibrozil for the secondary prevention of coronary heart disease in men with low levels of high-density lipoprotein cholesterol. Veterans Affairs High-Density Lipoprotein Cholesterol Intervention Trial Study Group. N. Engl. J. Med., 341:410–418.

Sanchez FA, Savalia NB, Duran RG, Lal BK, Boric MP, Duran WN., (2006). Functional significance of differential eNOS translocation. Am J Physiol Heart Circ Physiol., May 5; [Epub ahead of print]

Satake N, Shibata S, (1999). The potentiating effect of genistein on the relaxation induced by isoproterenol in rat aortic rings. Gen Pharmacol, 33:221–227.

Shaul PW., (2002). Regulation of endothelial nitric oxide synthase: location, location, location. Annu. Rev. Physiol., 64:749–774.

Shaul, PW and Mineo, C, (2004). HDL action on the vascular wall: is the answer NO? J Clin Invest., 15; 113(4): 509–513.

Shin WS, Hong YH, Peng HB, De Caterina R, Libby P, Liao JK, (1996). Nitric oxide attenuates vascular smooth muscle cell activation by interferon. The role of constitutive NF-B activity. J Biol Chem, 271:11317–11324.

Skidgel RA, Stanislavjevic S, Erdos EG., (2006). Kinin- and angiotensin-converting enzyme (ACE) inhibitor-mediated nitric oxide production in endothelial cells. Biol Chem., 387(2):159-65.

Spieker et al., (2002). High-density lipoprotein restores endothelial function in hypercholesterolemic men. Circulation, 105:1399–1402.

Spyridopoulos I, Haendeler J, Urbich C, Brummendorf TH, Oh H, Schneider MD, Zeiher AM, Dimmeler S, (2004). Statins enhance migratory capacity by upregulation of the telomere repeat-binding factor TRF2 in endothelial progenitor cells. Circulation, 110:3136 –3142.

Squadrito F, Altavilla D, Crisafulli A, Saitta A, Cucinotta D, Morabito N, D’Anna R, Corrado F, Ruggeri P, Frisina N, Squadrito G, (2003). Effect of genistein on endothelial function in postmenopausal women: a randomized, double-blind, controlled study. Am J Med, 114:470–476.

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Uittenbogaard A, Shaul PW, Yuhanna IS, Blair A, Smart EJ., (2000). High density lipoprotein prevents oxidized low density lipoprotein-induced inhibition of endothelial nitric-oxide synthase localization and activation in caveolae. J. Biol. Chem., 275:11278–11283.

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Walker HA, Dean TS, Sanders TA, Jackson G, Ritter JM, Chowienczyk PJ, (2001). The phytoestrogen genistein produces acute nitric oxide-dependent dilation of human forearm vasculature with similar potency to 17ß-estradiol. Circulation, 103:258–262.

Walter DH, Rittig K, Bahlmann FH, Kirchmair R, Silver M, Murayama T, Nishimura H, Losordo DW, Asahara T, Isner JM, (2002). Statin therapy accelerates reendothelialization: a novel effect involving mobilization and incorporation of bone marrow-derived endothelial progenitor cells. Circulation, 105:3017–3024.

Wang C-H, Ciliberti N, Li S-H, Szmitko PE, Weisel RD, Fedak PWM, Al-Omran M, Cherng W-J, Li R-K, Stanford WL, Verma S., (2004). Rosiglitazone facilitates angiogenic progenitor cell differentiation toward endothelial lineage: a new paradigm in glitazone pleiotropy. Circulation, 109:1392-1400.

Werner N, Junk S, Laufs L, Link A, Walenta K, Bohm M, Nickenig G., (2003). Intravenous transfusion of endothelial progenitor cells reduces neointima formation after vascular injury. Circ Res., 93:e17– e24.

Werner N, Kosiol S, Tobias Schiegl T, Ahlers P, Walenta K, Link A, Böhm M, Georg N (2005). Circulating Endothelial Progenitor Cells and Cardiovascular Outcomes. N Engl J Med 2005; 353:999-1007

Wilson PW, Abbott RD, Castelli WP, (1988). High density lipoprotein cholesterol and mortality. The Framingham Heart Study. Arteriosclerosis, 8:737–741.

Xu H-L, Feinstein DL, Santizo RA, Koenig HM, Pelligrino DA., (2002).Agonist-specific differences in mechanisms mediating eNOS-dependent pial arteriolar dilation in rats. Am J Physiol Heart Circ Physiol., 282:H237-H243

Yu J, Rudic RD, Sessa WC, (2002). Nitric oxide-releasing aspirin decreases vascular injury by reducing inflammation and promoting apoptosis. Lab Invest, 82:825–832.

Yuhanna IS, et al., (2001). High-density lipoprotein binding to scavenger receptor-BI activates endothelial nitric oxide synthase. Nat. Med., 7:853–857.

Zeiher AM, Schachlinger V, Hohnloser SH, Saurbier B, Just H., (1994). Coronary atherosclerotic wall thickening and vascular reactivity in humans. Elevated high-density lipoprotein levels ameliorate abnormal vasoconstriction in early atherosclerosis. Circulation, 89:2525–2532.

Other aspects of Nitric Oxide involvement in biological systems in humans are covered in the following posts on this site:

 

Nitric Oxide in bone metabolism July 16, 2012 

Author: Aviral Vatsa PhD, MBBS

http://pharmaceuticalintelligence.com/2012/07/16/nitric-oxide-in-bone-metabolism/?goback=%2Egde_4346921_member_134751669 

Nitric Oxide production in Systemic sclerosis July 25, 2012 

Curator: Aviral Vatsa, PhD, MBBS

http://pharmaceuticalintelligence.com/2012/07/25/nitric-oxide-production-in-systemic-sclerosis/?goback=%2Egde_4346921_member_138370383 

Nitric Oxide Signalling Pathways August 22, 2012 

Curator/ Author: Aviral Vatsa, PhD, MBBS

http://pharmaceuticalintelligence.com/2012/08/22/nitric-oxide-signalling-pathways/?goback=%2Egde_4346921_member_151245569

Nitric Oxide: a short historic perspective August 5, 2012 

Author/Curator: Aviral Vatsa PhD, MBBS

http://pharmaceuticalintelligence.com/2012/08/05/nitric-oxide-a-short-historic-perspective-7/

Nitric Oxide: Chemistry and function August 10, 2012 

Curator/Author: Aviral Vatsa PhD, MBBS

http://pharmaceuticalintelligence.com/2012/08/10/nitric-oxide-chemistry-and-function/?goback=%2Egde_4346921_member_145137865 

 

Nitric Oxide and Platelet Aggregation August 16, 2012 

Author: Dr. Venkat S. Karra, Ph.D.

http://www.tginnovations.wordpress.com/ 

http://pharmaceuticalintelligence.com/2012/08/16/no-and-platelet-aggregation/?goback=%2Egde_4346921_member_147475405 

 

The rationale and use of inhaled NO in Pulmonary Artery Hypertension and Right Sided Heart Failure August 20, 2012 

Author: Larry Bernstein, MD

http://pharmaceuticalintelligence.com/2012/08/20/the-rationale-and-use-of-inhaled-no-in-pulmonary-artery-hypertension-and-right-sided-heart-failure/  

Nitric Oxide: The Nobel Prize in Physiology or Medicine 1998 Robert F. Furchgott, Louis J. Ignarro, Ferid Murad August 16, 2012 

Reporter: Aviva Lev-Ari, PhD, RN

http://pharmaceuticalintelligence.com/2012/08/16/nitric-oxide-the-nobel-prize-in-physiology-or-medicine-1998-robert-f-furchgott-louis-j-ignarro-ferid-murad/ 

 

Coronary Artery Disease – Medical Devices Solutions: From First-In-Man Stent Implantation, via Medical Ethical Dilemmas to Drug Eluting Stents August 13, 2012 

Author: Aviva Lev-Ari, PhD, RN

http://pharmaceuticalintelligence.com/2012/08/13/coronary-artery-disease-medical-devices-solutions-from-first-in-man-stent-implantation-via-medical-ethical-dilemmas-to-drug-eluting-stents/

Nano-particles as Synthetic Platelets to Stop Internal Bleeding Resulting from Trauma

August 22, 2012 

Reporter: Dr. V. S. Karra, Ph.D.

http://www.tginnovations.wordpress.com/ 

http://pharmaceuticalintelligence.com/2012/08/22/nano-particles-as-synthetic-platelets-to-stop-internal-bleeding-resulting-from-trauma/ 

 

Cardiovascular Disease (CVD) and the Role of agent alternatives in endothelial Nitric Oxide Synthase (eNOS) Activation and Nitric Oxide Production July 19, 2012 

Curator and Investigator Initiated Study: Aviva Lev-Ari, PhD, RN

http://pharmaceuticalintelligence.com/2012/07/19/cardiovascular-disease-cvd-and-the-role-of-agent-alternatives-in-endothelial-nitric-oxide-synthase-enos-activation-and-nitric-oxide-production/ 

Macrovascular Disease – Therapeutic Potential of cEPCs: Reduction Methods for CV Risk

An Investigation of the Potential of circulating Endothelial Progenitor Cells (cEPCs) as a Therapeutic Target for Pharmacological Therapy Design for Cardiovascular Risk Reduction: A New Multimarker Biomarker Discovery July 2, 2012

Curator: Aviva Lev-Ari, PhD, RN

http://pharmaceuticalintelligence.com/2012/07/02/macrovascular-disease-therapeutic-potential-of-cepcs-reduction-methods-for-cv-risk/  

Bone remodelling in a nutshell June 22, 2012

Author: Aviral Vatsa, Ph.D., MBBS

http://pharmaceuticalintelligence.com/2012/06/22/bone-remodelling-in-a-nutshell/ 

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Bystolic’s generic Nebivolol – Positive Effect on circulating Endothelial  Progenitor Cells Endogenous Augmentation

Curator: Aviva Lev-Ari, PhD, RN

UPDATED on 7/30/2022 for 9/12/2014

FDA Advisory votes against approving Actavis nebivolol/valsartan combo – The Pharma Letter

Reporter: Aviva Lev-Ari, PhD, RN

https://pharmaceuticalintelligence.com/2014/09/12/fda-advisory-votes-against-approving-actavis-nebivololvalsartan-combo-the-pharma-letter/

 

Bystolic’s generic Nebivolol – FDA approved for Treatment of Hypertension since 2008 – Pharmacological agent hypothesized to have positive effect on circulating Endothelial  Progenitor Cells (cEPCs) endogenous augmentation: Low number of cEPCs found to be associated with high Macrovascular Risk Events

Induction of NO Production and Stimulation of eNOS

Mechanism of Action (MOA) for Nitric Oxide (NO) and endothelial Nitric Oxide Syntase (eNOS) are described in George T. and P. Ramwell, (2004). Nitric Oxide, Donors, & Inhibitors. Chapter 19 in Katzung, BG., Basic & Clinical Pharmacology. McGraw-Hill, 9th Edition, pp. 313 – 318

http://books.google.com/books/about/Basic_and_Clinical_Pharmacology.html?id=4O7ghcthkt4C

Nitric oxide (NO) is a relative newcomer to pharmacology, as the paper which initiated the field was published only 25 years ago. In 2006, it is known that Arginine-vasopressin (AVP) is a hormone that is essential for both osmotic and cardiovascular homeostasis and exerts physiological regulation through three receptors, It causes a decrease in BP which occurs through mediated release of NO from the vascular endothelium (Koshimizu et al., 2006).

Dr. S. H. Snyder of Johns Hopkins University has established gases as a new class of neurotransmitters, beginning with his demonstrating the role of nitric oxide in mediating glutamate synaptic transmission and neurotoxicity. His isolation and molecular cloning of nitric oxide synthase led to major insights into the neurotransmitter functions of nitric oxide throughout the body. http://nrc88.nas.edu/pnas_search/memberDetails.aspx?ctID=50282

http://www.pnas.org/content/108/46/E1137.abstract

http://www.ncbi.nlm.nih.gov/pmc/articles/PMC3219156/

http://www.drproctor.com/O2NOpnas.htm

Predominant role of endothelial nitric oxide synthase in vascular endothelial growth factor-induced angiogenesis and vascular permeability

http://www.pnas.org/content/98/5/2604.short

Intracellular processing of endothelial nitric oxide synthase isoforms associated with differences in severity of cardiopulmonary diseases: Cleavage of proteins with aspartate vs. glutamate at position 298

http://www.pnas.org/content/97/6/2832.short

Stroke protection by 3-hydroxy-3-methylglutaryl (HMG)-CoA reductase inhibitors mediated by endothelial nitric oxide synthase

http://www.pnas.org/content/95/15/8880.short

Superoxide generation by endothelial nitric oxide synthase: The influence of cofactors

NO impact is such that to date more than 31,000 papers have been published with NO in the title and more than 65,000 refer to it in some way. The identification of NO with endothelium-derived relaxing factor and the discovery of its synthesis from L-arginine led to the realization that the L-arginine: NO pathway is widespread and plays a variety of physiological roles. These include the maintenance of vascular tone, neurotransmitter function in both the central and peripheral nervous systems, and mediation of cellular defense. In addition, NO interacts with mitochondrial systems to regulate cell respiration and to augment the generation of reactive oxygen species, thus triggering mechanisms of cell survival or death.

Review of the role of NO in the cardiovascular system found, that in addition to maintaining a vasodilator tone, it inhibits platelet aggregation and adhesion and modulates smooth muscle cell proliferation. NO has been implicated in a number of cardiovascular diseases and virtually every risk factor for these appears to be associated with a reduction in endothelial generation of NO. Reduced basal NO synthesis or action leads to vasoconstriction, elevated blood pressure and thrombus formation. By contrast, overproduction of NO leads to vasodilatation, hypotension, vascular leakage, and disruption of cell metabolism. Appropriate pharmacological or molecular biological manipulation of the generation of NO will doubtless prove beneficial in such conditions (Moncada and Higgs, 2006).

http://onlinelibrary.wiley.com/doi/10.1038/sj.bjp.0706458/full

Evidence of HDL Modulation of eNOS in Humans

 Whereas the functional link between HDL and eNOS has been appreciated only recently, the relationship between HDL and endothelium-dependent vasodilation has been known for some time. In studies of coronary vasomotor responses to acetylcholine, it was noted in 1994 that patients with elevated HDL have greater vasodilator and attenuated vasoconstrictor responses (Zeiher et al., 1994).

Circulation, 89:2525–2532.

Studies of flow-mediated vasodilation of the brachial artery have also shown that HDL cholesterol is an independent predictor of endothelial function (Li et al., 2000).

Int. J. Cardiol., 73:231–236

The direct, short-term impact of HDL on endothelial function also has recently been investigated in humans. One particularly elegant study recently evaluated forearm blood flow responses in individuals who are heterozygous for a loss-of-function mutation in the ATP-binding cassette transporter 1 (ABCA1) gene. Compared with controls, ABCA1 heterozygotes (six men and three women) had HDL levels that were decreased by 60%, their blood flow responses to endothelium-dependent vasodilators were blunted, and endothelium-independent responses were unaltered. After a 4-hour infusion of apoAI/phosphatidylcholine disks, their HDL level increased threefold and endothelium-dependent vasomotor responses were fully restored (Bisoendial et al., 2003). It has also been observed that endothelial function is normalized in hypercholesterolemic men with normal HDL levels shortly following the administration of apoAI/phosphatidylcholine particles (Spieker et al., 2002).

Circulation, 105:1399–1402.

Thus, evidence is now accumulating that HDL is a robust positive modulator of endothelial NO production in humans (Shaul & Mineo, 2004).

J Clin Invest., 15; 113(4): 509–513.

HDL is more than an eNOS Agonist

 In addition to the modulation of NO production by signaling events that rapidly dictate the level of enzymatic activity, important control of eNOS involves changes in the abundance of the enzyme. In a clinical trial by the Karas laboratory of niacin therapy in patients with low HDL levels (nine males and two females), flow-mediated dilation of the brachial artery was improved in association with a rise in HDL of 33% over 3 months (Kuvin et al., 2002).

Am. Heart J., 144:165–172.

They also demonstrated that eNOS expression in cultured human endothelial cells is increased by HDL exposure for 24 hours. They further showed that the increase in eNOS is related to an increase in the half-life of the protein, and that this is mediated by PI3K–Akt kinase and MAPK (Ramet et al., 2003).

J. Am. Coll. Cardiol., 41:2288–2297.

Thus, the same mechanisms that underlie the acute activation of eNOS by HDL appear to be operative in upregulating the expression of the enzyme.

The current understanding of the mechanism by which HDL enhances endothelial NO production is summarized in Shaul & Mineo (2004), Figure 1.

J Clin Invest., 15; 113(4): 509–513.

It describes the mechanism of action for HDL enhancement of NO production by eNOS in vascular endothelium.

(a)   HDL causes membrane-initiated signaling, which stimulates eNOS activity. The eNOS protein is localized in cholesterol-enriched (orange circles) plasma membrane caveolae as a result of the myristoylation and palmitoylation of the protein. Binding of HDL to SR-BI via apoAI causes rapid activation of the nonreceptor tyrosine kinase src, leading to PI3K activation and downstream activation of Akt kinase and MAPK. Akt enhances eNOS activity by phosphorylation, and independent MAPK-mediated processes are additionally required (Duarte, et al., 1997). .Eur J Pharmacol, 338:25–33. HDL also causes an increase in intracellular Ca2+ concentration (intracellular Ca2+ store shown in blue; Ca2+ channel shown in pink), which enhances binding of calmodulin (CM) to eNOS. HDL-induced signaling is mediated at least partially by the HDL-associated lysophospholipids SPC, S1P, and LSF acting through the G protein–coupled lysophospholipid receptor S1P3. HDL-associated estradiol (E2) may also activate signaling by binding to plasma membrane–associated estrogen receptors (ERs), which are also G protein coupled. It remains to be determined if signaling events are also directly mediated by SR-BI (Yuhanna et al., 2001), (Nofer et al., 2004), (Gong et al., 2003), (Mineo et al., 2003).

Nat. Med., 7:853–857.

J. Clin. Invest.,113:569–581.

J. Clin. Invest., 111:1579–1587.

J. Biol. Chem., 278:9142–9149.

(b)   HDL regulates eNOS abundance and subcellular distribution. In addition to modulating the acute response, the activation of the PI3K–Akt kinase pathway and MAPK by HDL upregulates eNOS expression (open arrows). HDL also regulates the lipid environment in caveolae (dashed arrows). Oxidized LDL (OxLDL) can serve as a cholesterol acceptor (orange circles), thereby disrupting caveolae and eNOS function. However, in the presence of OxLDL, HDL maintains the total cholesterol content of caveolae by the provision of cholesterol ester (blue circles), resulting in preservation of the eNOS signaling module (Ramet et al., 2003), (Blair et al., 1999), (Uittenbogaard et al., 2000).

J. Am. Coll. Cardiol., 41:2288–2297.

J. Biol. Chem., 274:32512–32519.

J. Biol. Chem., 275:11278–11283.

Source for HDL-eNOS Figure: Shaul & Mineo (2004).

 

HDL enhances NO production by eNOS in vascular endothelium.

Nebivolol:  DRUG RESEARCH & CLINICAL TRIALS

Agent selection: Nebivolol

Rationale:            Patient’s pharmacological beneficial effects derived from usage of Nebivolol include the following but are not limited to this list

  •       Vasodilatory actions (Mukherjee et al., 2004).
  •      Inhibition of NADPH oxidase activity in inflammatory cells (Mollnau et al., 2003),
  •       Increase in arterial distensibility (McEniery et al., 2004)
  •       Reduction in nitroxidative stress and restores nitric oxide bioavailability in endothelium (Mason et al., 2005)
  •       Stimulation of nitric oxide release from endothelial cells through ATP efflux: a novel mechanism for antihypertensive   action (Kalinowski et al., 2003)
  •       {beta}-Adrenergic Receptor Stimulation and Nitric Oxide Release on Tissue Perfusion and Metabolism (Jordan et al., 2001)
  •       Correction of impaired adrenergic vasorelaxation in hypertension in use in conjunction to gene therapy implantation in the endothelium (Iaccarino, et al., 2002)
  •       Vasorelaxation of Coronary Microvessels (Dessy et al., 2005)
  •       Exploratory treatment for the Brugada syndrome, a disease caused by increased electrical heterogeneity between the right ventricular endo- and epicardium. The degree of electrical heterogeneity may be greater in the free wall in some patients, the outflow tract in others, or even in the inferior wall. The ST-segment elevation may then be recorded at the normal precordial position of V1–V3 in the first situation, at one or two intercostal spaces higher in the second, and in the inferior leads II, III and a VF in the third situation, representing a variant of the Brugada syndrome (Brugada et al., 2001).
  •       Endothelial ß2-Adrenergic Receptor–Mediated Nitric Oxide Production, two actions in one therapeutic agent for populations with prevalent polypharmacy due to multiple co-morbidities (Broeders et al., 2000).

The rationale for Agent selection supports the hypothesis that Nebovolol would have positive effect on cEPCs endogenous augmentation. It was a solution sought for the observations made be Werner in 2003 and in 2005 that Low number of cEPCs found in patient blood is statistically associated with high incidence of Macrovascular Risk Events.

 Nebivolol is a long-acting, cardioselective beta-blocker currently licensed for the treatment of hypertension. It has mild vasodilating properties attributed to its interaction with the L-arginine/nitric oxide pathway, a property not shared by other beta-blockers. To date this has been demonstrated in volunteers and small numbers of patients. If this mechanism is shown to result in improved clinical outcomes, nebivolol could be of value in managing hypertensive patients with endothelial dysfunction e.g., those with diabetes mellitus or hypercholesterolaemia and in patients with ischemic heart disease. It is an effective antihypertensive agent. Short-term (up to 12 weeks), published clinical studies in patients with mild-to-moderate essential hypertension have shown that it lowers sitting systolic and diastolic blood pressure to a similar extent as standard therapies – atenolol, metoprolol, enalapril, lisinopril, nifedipine and hydrochlorothiazide. One open non-comparative study showed that a significant reduction in BP is maintained over 1 year. It is well-tolerated; the frequency and severity of adverse events is similar to that reported for placebo, atenolol or enalapril in published studies. In the largest comparative study the numbers of patients complaining of fatigue was smaller for nebivolol compared with atenolol, although the numbers in both groups were too small for any meaningful comparisons to be made. In addition, in single comparative studies with nifedipine or metoprolol, the overall incidence of adverse events was smaller in the nebivolol groups. Although uncontrolled heart failure is listed as a contra-indication in the SPC, preliminary studies have shown that nebivolol has beneficial effects on left ventricular function in patients with hypertension and heart failure.

Nebivolol is considerably more expensive than atenolol, but costs less than carvedilol or celiprolol

How does it work?

Nebivolol belongs to a group of medicines called beta-blockers, which block beta receptors in the heart, lungs and other organs of the body. Blocking these receptors prevents the action of two chemicals called noradrenaline and adrenaline that occur naturally in the body. These are often referred to as the ‘fight or flight’ chemicals as they are responsible for the body’s reaction to stressful situations.

Blocking the beta receptors in the heart causes the heart to beat more slowly and with less force. This means that the pressure at which blood is pumped out of the heart to the rest of the body is reduced. This medicine also widens the blood vessels. These are two of the ways in which nebivolol helps to reduce blood pressure, however the whole mechanism is not fully understood.

What is it used for?

  •       High blood pressure (hypertension)

In vivo metabolized nebivolol increases vascular NO production. This phenomenon involves endothelial ß2-adrenergic receptor ligation, with a subsequent rise in endothelial free [Ca2+]i and endothelial NO synthase–dependent NO production. This may be an important mechanism underlying the nebivolol-induced, NO-mediated arterial dilation in humans. Nebivolol is a ß1-selective adrenergic receptor antagonist with proposed nitric oxide (NO)–mediated vasodilating properties in humans. In this study, they explored whether nebivolol indeed induces NO production and, if so, by what mechanism. They hypothesized that not nebivolol itself but rather its metabolites augment NO production (Broeders et al., 2000).

Circulation, 102:677.

http://www.dailymedplus.com/monograph/view/setid/673f5ad2-c09b-4a89-9407-efdadd007917

Relation between Beta-adrenoceptor Stimulation and Nitric Oxide Synthesis in Vascular Control.

This commentary reviews recent evidence that implicates nitric oxide (NO) as a mediator of beta(2)-adrenoceptor (beta(2)-AR)-initiated vasodilatation. Emphasis is placed on the following: 1) in vivo studies that demonstrate potential physiological importance, 2) mechanistic studies performed in vitro in human umbilical vein endothelial cells (HUVEC), 3) effects of beta(2) agonists on arterial pulse wave reflection, and 4) therapeutic opportunities offered by the combination of beta(2) agonist action with selective beta(1) antagonism. Vascular beta(2)-AR-initiated mechanisms provide a physiologically important control mechanism during exercise. Activation of beta(2)-AR in HUVEC leads to vasodilatation that is partly NO-mediated via activation of protein kinase A (PKA) and of phosphatidylinositol-3 kinase (PI3K)/Akt pathways, leading to serine phosphorylation of the endothelial NO synthase (eNOS). In vivo, beta(2)-AR activation limits the rise in blood pressure during exercise and reduces arterial pulse wave reflection. Nebivolol is a selective beta(1)-AR antagonist with vasodilator actions operating through these pathways, offering novel therapeutic opportunities.

Ritter JM, Ferro A, Chowienczyk PJ., (2006). Relation between beta-adrenoceptor stimulation and nitric oxide synthesis in vascular control.

Eur J Clin Pharmacol., 62 (Supplement 13):109-113. 

eNOS is not Activated by Nebivolol in Human Failing Myocardium.

Nebivolol is a highly selective beta(1)-adrenoceptor blocker with additional vasodilatory properties, which may be due to an endothelial-dependent beta(3)-adrenergic activation of the endothelial nitric oxide synthase (eNOS). beta(3)-adrenergic eNOS activation has been described in human myocardium and is increased in human heart failure. Therefore, this study investigated whether nebivolol may induce an eNOS activation in cardiac tissue. Immunohistochemical stainings were performed using specific antibodies against eNOS translocation and eNOS serine(1177) phosphorylation in rat isolated cardiomyocytes, human right atrial tissue (coronary bypass-operation), left ventricular non-failing (donor hearts) and failing myocardium after application of the beta-adrenoceptor blockers nebivolol, metoprolol and carvedilol, as well as after application of BRL 37344, a specific beta(3)-adrenoceptor agonist. BRL 37344 (10 muM) significantly increased eNOS activity in all investigated tissues (either via translocation or phosphorylation or both). None of the beta-blockers (each 10 muM), including nebivolol, increased either translocation or phosphorylation in any of the investigated tissues. In human failing myocardium, nebivolol (10 muM) decreased eNOS activity. In conclusion, nebivolol shows a tissue-specific eNOS activation. Nebivolol does not activate the endothelial eNOS in end-stage human heart failure and may thus reduce inhibitory effects of NO on myocardial contractility and on oxidative stress formation. This mode of action may be of advantage when treating heart failure patients.

Brixius K, Song Q, Malick A, Boelck B, Addicks K, Bloch W, Mehlhorn U, Schwinger R, (2006). eNOS is not activated by nebivolol in human failing myocardium.

Life Sci. 2006 Apr 25

A Dose-response Trial of Nebivolol in Essential Hypertension.

Report by International Clinical R&D, Janssen Research Foundation, Beerse, Belgium.

A double-blind placebo-controlled dose-response trial of nebivolol, a cardioselective beta-blocking drug which also induces endothelium-dependent dilatation via nitric oxide, has been performed. Nebivolol reduced blood pressure (BP) in a dose dependent way, and was shown to be effective given once daily, without appreciable differences between peak and trough drug levels. There was no postural component to the BP fall. There was no clear inferiority of efficacy in black patients. A single daily dose of 5 mg was appropriate, with no evident advantage at 10 mg. The drug was well tolerated, even at 10 mg daily. BP control was achieved largely in the absence of typical side effects of beta-blockade. The combination of properties of nebivolol renders it an attractive addition to the antihypertensive repertoire.

Van Nueten L, Dupont AG, Vertommen C, Goyvaerts H, Robertson JI., (1997). A dose-response trial of nebivolol in essential hypertension.

J Hum Hypertens., 11(2):139-44.

Other eNOS Agonists – Exploration of Different Aspects related to eNOS Mechanism of Action

ACEI and NO stimulation

Carboxypeptidase cleavage of the C-terminal Arg of kinins generates specific agonists of the B1 receptor. Activation of B1 receptors produces nitric oxide via eNOS in bovine endothelial cells and iNOS in cytokine-stimulated human endothelial cells. Angiotensin-converting enzyme (ACE) inhibitors are direct agonists of B1 receptors in endothelial cells, although they release NO via a different signaling pathway than peptide ligands in bovine cells. This brief review discusses carboxypeptidase M as a required processing enzyme for generating B1 agonists, how ACE inhibitors and peptide ligands stimulate NO production and the evidence for, as well as some consequences of, the direct activation of B1 receptors by ACE inhibitors (Skidgel et al., 2006).

Biol Chem., 387(2):159-65.

Fenofibrate

 Fenofibrate improves endothelial function by lipid-lowering and anti-inflammatory effects. Additionally, fenofibrate has been demonstrated to upregulate endothelial nitric oxide synthase (eNOS). AMP-activated protein kinase (AMPK) has been reported to phosphorylate eNOS at Ser-1177 and stimulate vascular endothelium-derived nitric oxide (NO) production. We report here that fenofibrate activates AMPK and increases eNOS phosphorylation and NO production in human umbilical vein endothelial cells (HUVEC). Incubation of HUVEC with fenofibrate increased the phosphorylation of AMPK and acetyl-CoA carboxylase. Fenofibrate simultaneously increased eNOS phosphorylation and NO production. Inhibitors of protein kinase A and phosphatidylinositol 3-kinase failed to suppress the fenofibrate-induced eNOS phosphorylation. Neither bezafibrate nor WY-14643 activated AMPK in HUVEC. Furthermore, fenofibrate activated AMPK without requiring any transcriptional activities. These results indicate that fenofibrate stimulates eNOS phosphorylation and NO production through AMPK activation, which is suggested to be a novel characteristic of this agonist and unrelated to its effects on peroxisome proliferator-activated receptor alpha (Murakami et al., 2006). Biochem Biophys Res Commun., 341(4):973-8. Epub 2006 Jan 24.

Function of Ca2+ on NO response

Nitric oxide (NO) produced in the endothelium via the enzyme endothelial nitric-oxide synthase (eNOS) is an important vasoactive compound. Wild-type (WT) eNOS is localized to the plasma membrane and perinuclear/Golgi region by virtue of N-terminal myristoylation and palmitoylation. Acylation-deficient mutants (G2AeNOS) remain cytosolic and release less NO in response to Ca2+-elevating agonists; a disparity that we hypothesized was attributed to the greater distance between G2AeNOS and plasma membrane Ca2+ influx channels. The reduced activity of G2AeNOS versus WT was reversed upon disruption of cellular integrity with detergents or sonication. NO production from both constructs relied almost exclusively on the influx of extracellular Ca2+, and elevating intracellular Ca2+ to saturating levels with 10 microM ionomycin in the presence of 10 mM extracellular Ca2+ equalized NO production. To identify the contribution of calcium to the differences in activity between these enzymes, we created Ca2+/CaM-independent eNOS mutants by deleting the two putative autoinhibitory domains of eNOS. There was no difference in NO production between WT and G2A-targeted Ca2+-independent eNOS, suggesting that Ca2+ was the factor responsible. When eNOS constructs were fused in-frame to the bioluminescent probe aequorin, membrane-bound probes were exposed to higher [Ca2+] in unstimulated cells but upon ionomycin stimulation, the probes experienced equal amounts of Ca2+. The WT and G2A enzymes displayed significant differences in the phosphorylation state of Ser617, Ser635, and Ser1179, and mutating all three sites to alanine or restoring phosphorylation with the phosphatase inhibitor calyculin abolished the differences in activity. We therefore conclude that the disparity in NO production between WTeNOS and G2AeNOS is not caused by different localized [Ca2+] upon stimulation with ionomycin, but rather differences in phosphorylation state between the two constructs (Church & Fulton, 2006).

 J Biol Chem., 2006 Jan 20;281(3):1477-88. Epub 2005 Oct 28.

Muscarinic ACh and Purinergic (ADP) – mediated eNOS activation

Nitric oxide (NO) regulates flow and permeability. Acetylcholine (ACh) and platelet-activating factor (PAF) lead to eNOS phosphorylation and NO release. While ACh causes only vasodilation, PAF induces vasoconstriction and hyperpermeability. The key differential signaling mechanisms for discriminating between vasodilation and hyperpermeability are unknown. We tested the hypothesis that differential translocation may serve as a regulatory mechanism of eNOS to determine specific vascular responses. We used ECV-304 cells permanently transfected with eNOS-green fluorescent protein (ECVeNOS-GFP) and demonstrated that the agonists activate eNOS and reproduce their characteristic endothelial permeability effects in these cells. We evaluated eNOS localization by lipid raft analysis and immunofluorescence microscopy. After PAF and ACh, eNOS moves away from caveolae. eNOS distributes both in the plasma membrane and Golgi in control cells. ACh (10(-5) M, 10(-4) M) translocated eNOS preferentially to the Trans Golgi network (TGN) and PAF (10(-7) M) preferentially to the cytosol. We suggest that PAF-induced eNOS translocation preferentially to cytosol reflects a differential signaling mechanism related to changes in permeability, whereas ACh-induced eNOS translocation to the TGN is related to vasodilation (Sanchez et al., 2006).

Am J Physiol Heart Circ Physiol., May 5; [Epub ahead of print]

Nitric oxide (NO), derived from the endothelial isoform of NO synthase (eNOS), is a vital mediator of cerebral vasodilation. In the present study, we addressed the issue of whether the mechanisms responsible for agonist-induced eNOS activation differ according to the specific receptor being stimulated. Thus we examined whether heat shock protein 90 (HSP90), phosphatidylinositol-3-kinase (PI3K), and tyrosine kinase participate in ACh- versus ADP-induced eNOS activation in cerebral arterioles in vivo. Pial arteriolar diameter changes in anesthetized male rats were measured during sequential applications of ACh and ADP in the absence and presence of the nonselective NOS inhibitor N-nitro-L-arginine methyl ester (L-NAME), the neuronal NOS (nNOS)-selective inhibitor ARR-17477, the HSP90 blocker 17-(allylamino)-17-demethoxygeldanamycin (AAG), the PI3K inhibitor wortmannin (Wort), or the tyrosine kinase blocker tyrphostin 47 (T-47). Only NOS inhibition with L-NAME (not ARR-17477) reduced ACh and ADP responses (by 65-75%), which suggests that all of the NO dependence in the vasodilating actions of those agonists derived from eNOS. Suffusions of AAG, Wort, and T-47 were accompanied by substantial reductions in ACh-induced dilations but no changes in the responses to ADP. These findings suggest that muscarinic (ACh) and purinergic (ADP) receptor-mediated eNOS activation in cerebral arterioles involve distinctly different signal transduction pathways. (Xu et al., 2002).

Am J Physiol Heart Circ Physiol., 282:H237-H243

S-Nitrosylation of eNOS

Endothelial nitric-oxide synthase (eNOS) undergoes a complex pattern of post-translational modifications that regulate its activity. We have recently reported that eNOS is constitutively S-nitrosylated in endothelial cells and that agonists promote eNOS denitrosylation concomitant with enzyme activation (Erwin, P. A., Lin, A. J., Golan, D. E., and Michel, T. (2005),

J. Biol. Chem. 280, 19888–19894).

In the present studies, we use mass spectrometry to confirm that the zinc-tetrathiolate cysteines of eNOS are S-nitrosylated. eNOS targeting to the plasma membrane is necessary for enzyme S-nitrosylation, and we report that translocation between cellular compartments is necessary for dynamic eNOS S-nitrosylation. We transfected cells with cDNA encoding wild-type eNOS, which is membrane-targeted, or with acylation-deficient mutant eNOS (Myr–), which is expressed solely in the cytosol. While wild-type eNOS is robustly S-nitrosylated, we found that S-nitrosylation of the Myr– eNOS mutant is nearly abolished. When we transfected cells with a fusion protein in which Myr– eNOS is ligated to the CD8-transmembrane domain (CD8-Myr–), we found that CD8-Myr– eNOS, which does not undergo dynamic subcellular translocation, is hypernitrosylated relative to wild-type eNOS. Furthermore, we found that when endothelial cells transfected with wild-type or CD8-Myr– eNOS are stimulated with eNOS agonist, only wild-type eNOS is denitrosylated; CD8-Myr– eNOS S-nitrosylation is unchanged. These findings indicate that subcellular targeting is a critical determinant of eNOS S-nitrosylation. Finally, we show that eNOS S-nitrosylation can be detected in intact arterial preparations from mouse and that eNOS S-nitrosylation is a dynamic agonist-modulated process in intact blood vessels. These studies suggest that receptor-regulated eNOS S-nitrosylation may represent an important determinant of NO-dependent signaling in the vascular wall (Erwin et al., 2006).

 J. Biol. Chem., 281:1, 151-157.

Phosphorylation of eNOS

 The endothelial isoform of nitric-oxide synthase (eNOS) undergoes a complex pattern of covalent modifications, including acylation with the fatty acids myristate and palmitate as well as phosphorylation on multiple sites. eNOS acylation is a key determinant for the reversible subcellular targeting of the enzyme to plasmalemmal caveolae. We transfected a series of hemagglutinin epitope-tagged eNOS mutant cDNAs deficient in palmitoylation (palm) and/or myristoylation (myr) into bovine aortic endothelial cells; after treatment with the eNOS agonists sphingosine 1-phosphate or vascular endothelial growth factor, the recombinant eNOS was immunoprecipitated using an antibody directed against the epitope tag, and patterns of eNOS phosphorylation were analyzed in immunoblots probed with phosphorylation state-specific eNOS antibodies. The wild-type eNOS underwent agonist-induced phosphorylation at serine 1179 (a putative site for phosphorylation by kinase Akt), but phosphorylation of the myr eNOS at this residue was nearly abrogated; the palm eNOS exhibited an intermediate phenotype. The addition of the CD8 transmembrane domain to the amino terminus of eNOS acylation-deficient mutants rescued the wild-type phenotype of robust agonist-induced serine 1179 phosphorylation. Thus, membrane targeting, but not necessarily acylation, is the critical determinant for agonist-promoted eNOS phosphorylation at serine 1179. In striking contrast to serine 1179, phosphorylation of eNOS at serine 116 was enhanced in the myr eNOS mutant and was markedly attenuated in the CD8-eNOS membrane-targeted fusion protein. We conclude that eNOS targeting differentially affects eNOS phosphorylation at distinct sites in the protein and suggest that the inter-relationships of eNOS acylation and phosphorylation may modulate eNOS localization and activity and thereby influence NO signaling pathways in the vessel wall (Gonzalez et al., 2002).

J. Biol. Chem., 277;42:39554-39560.

eNOS translocation and Ca2+

In endothelial cells, two ways of endothelial nitric oxide (NO) synthase (eNOS) activation are known: 1) translocation and 2) Akt-dependent phosphorylation of the enzyme at Ser1177 (Ser1177 eNOS). We have recently shown that agonist-induced Ser1177 eNOS phosphorylation also occurs in human myocardium (10). In this study, we investigated the Ca2+ dependency of these two mechanisms in human atrium. Therefore, atrial tissue was obtained from patients who underwent coronary artery bypass operations. In immunohistochemical experiments, the translocated form of eNOS and phosphorylated Ser1177 eNOS were labeled using specific antibodies. eNOS translocation was measured in the absence and presence of the Ca2+ chelator BAPTA before and after application of BRL 37344 (BRL), a 3-adrenoceptor agonist that increases eNOS activity (34). In the absence of BAPTA, BRL time dependently increased the staining intensity of translocated eNOS, whereas in the presence of BAPTA, this effect was blunted. In contrast, BRL clearly increased the staining of phosphorylated Ser1177 eNOS even in the presence of BAPTA. This observation was confirmed using Western blot analysis. Using the NO-sensitive dye diaminofluorescein, we have demonstrated that BRL induced a strong NO release. This effect was completely abolished in the presence of BAPTA but was unaffected by LY-292004, an inhibitor of phosphatidylinositol 3-kinase activity and eNOS phosphorylation. Although Ca2+ dependent, neither the translocation of eNOS nor NO release was changed by the adenylate cyclase activator forskolin. In conclusion, 1) in human atrial myocardium, BRL-induced eNOS translocation but not Ser1177 eNOS phosphorylation is dependent on intracellular Ca2+. 2) In atrial myocardium, eNOS-translocation and not Ser1177 eNOS phosphorylation is responsible for generating the main amount of NO. 3) Although Ca2+ dependent, eNOS translocation and NO release could not be mimicked by adenylate cyclase activation as a mediator of -adrenergic stimulation (Pott et al., 2006).

Am J Physiol Cell Physiol 290: C1437-C1445.

Nebivolol  DRUG INFORMATION

http://www.intekom.com/pharm/adcock/nebilet.html – retrieved on 6/20/2006

 PHARMACOLOGICAL ACTION

 Pharmacodynamics

 Nebivolol is a racemate of two enantiomers, SRRR-nebivolol (or d-nebivolol) and RSSS-nebivolol (or l-nebivolol). It combines two pharmacological activities: –

• It is a competitive & selective B1-receptor antagonist which is attributable to the d-enantiomer

• It has mild vasodilating properties, possible due to an interaction with the L-arginine/nitric oxide pathway Nebivolol reduces heart rate & blood pressure at rest & during exercise. In healthy volunteers it has no significant effect on maximal exercise or endurance.

An in-vitro and in-vivo experiment in animals showed that nebivolol has no intrinsic sympathicomimetic activity and at pharmacological doses has no membrane stabilizing effect. It is also devoid of alpha-adrenergic antagonism at therapeutic doses.

Pharmacokinetics

Nebivolol can be given with or without meals with peak plasma concentrations occurring within 2 – 6 hours after dosing. It is extensively metabolized partly to active hydroxy metabolites. The bioavailability of nebivolol averages 12% in extensive metabolizers (EM’s) & is virtually complete in poor metabolizers (PM’s), but the mean bioavailability of the separate enantiomers and hydroxylated metabolites was fairly similar between EM’s & PM’s and no differences were found in the pharmacodynamic effects.

Steady-state plasma levels for nebivolol are reached within 24 hours in most subjects (EM’s). The elimination half-lives of the hydroxy-metabolites of both enantiomers average 24 hours in EM’s and are twice as long in PM’s. Plasma concentrations are dose proportional and the pharmacokinetics of nebivolol are unaffected by age. Nebivolol is highly protein bound; d-nebivolol being 98.1% and l-nebivolol 97,9% bound to albumin. About 52% of the dose is excreted in urine and about 15% in the faeces in PM’s one week after administration.

INDICATIONS: Treatment of mild to moderate essential hypertension.

 CONTRA-INDICATIONS

  • Hypersensitivity to Nebilet
  • Liver insufficiency or liver function impairment.
  • Pregnancy and lactation
  • Nebilet is contra-indicated in:

– Cardiogenic shock            – Untreated phaeochromocytoma

– Uncontrolled heart failure            – Metabolic acidosis

– Sick sinus syndrome, including            – Bradycardia (heart rate < 50 bpm)

– sino-atrial block            – Bronchial asthma

– 2nd & 3rd degree heart block            – Hypotension

– History of bronchospasm &             – Severe peripheral circulatory disorders

– bronchial asthma             – Verapamil therapy – Children, as safety and efficacy has not been demonstrated

 WARNINGS

Beta-adrenergic antagonists may increase the sensitivity to allergens and the severity of anaphylactic reactions

 SIDE-EFFECTS AND SPECIAL PRECAUTIONS:

 Side-Effects:

The most common side-effects (incidence between – 1-10%) are headache, dizziness, tiredness & paraesthesia. Other side-effects reported in 1% of patients are: diarrhea, constipation, nausea, dyspnea & edema. Typical beta-adrenergic antagonist side-effects reported in less than 1% of patients are: bradycardia, slowed AV conduction/AV-block, hypotension, heart failure, increase of intermittent claudication, impaired vision, impotence, depression, nightmare, dyspepsia, flatulence, vomiting, bronchospasm and rash.

The following side-effects have also been reported with some beta-adrenergic antagonists: hallucinations, psychoses, confusion, cold/cyanotic extremities, Raynaud phenomenon, dry eyes and mucocutaneous toxicity of the practolol-type, sleep disturbances and abdominal cramping.

Congestive heart failure or heart block may be precipitated in patients with underlying cardiac disorders. Pneumonitis, pleurisy, paraesthesia, peripheral neuropathy, overt psychosis, myopathies, skin rash, pruritis, and reversible alopecia have been reported. Ocular symptoms include decreased tear production, blurred vision and soreness.

Hematological reactions include nonthrombocytopenic purpura, thrombocytopenia, and less frequently agranulocytosis. Transient eosinophilia can occur.

Metabolic changes affect glucose control and cholesterol concentrations. Other side effects include a lupus like syndrome, male impotence, hypoglycemia, sclerosing peritonitis and retroperitoneal fibrosis. Severe peripheral vascular disease and even peripheral gangrene may be precipitated.

Special Precautions:

Cardiovascular:

Beta-adrenergic antagonists should not be used in patients with untreated congestive heart failure, unless their condition has been stabilized. One of the pharmacological actions of beta-blockers is to reduce the heart rate.

Abrupt discontinuation of therapy may cause exacerbation of angina pectoris in patients suffering from ischemic heart disease. Discontinuation of therapy should be gradual (over a period of 1-2 weeks) and patients should be advised to limit the extent of their physical activity during the period that their medicine may be discontinued. If the pulse rate drops below 50-55 bpm at rest and/or the patient experiences symptoms suggestive of bradychardia, the dosage should be reduced. Beta-adrenergic antagonists should be used with caution in:

• Peripheral circulatory disorders (Raynaud’s disease or syndrome, intermittent claudication) as the disorders may be aggravated

• 1st degree heart block because of the negative effect of beta-blockers on conduction time

• Prinzmetal’s angina due to unopposed alpha receptor mediated coronary artery vasoconstriction. Beta-blockers may increase the number and duration of anginal attacks

Metabolic/Endocrinological:

Symptoms of hypoglycemia (tachycardia, palpitations) may be masked in diabetic patients. Tachycardic symptoms may be masked in hyperthyroidism. Abrupt withdrawal may intensify symptoms.

Respiratory:

Bronchospasm may occur in patients suffering from asthma, bronchitis and other chronic pulmonary diseases.

Other:

Psoriasis may be aggravated. Patients with phaeochromocytoma should not receive beta-blockers without concomitant alpha-adrenoreceptor blocking therapy.

Beta-blockers may unmask myasthenia gravis.

Adverse reactions are more common in patients with renal decompensation, and in patients who receive beta-blockers intravenously.

INTERACTIONS

Calcium Antagonists:

Caution should be exercised when administering beta-blockers with calcium antagonists of the verapamil or diltiazem type because of their negative effect on contractility and atrio-ventricular conduction. Exaggeration of these effects can occur particularly in patients with impaired ventricular function and/or SA or AV conduction abnormalities. Neither medicine should therefore be administered intravenously within 48 hours of discontinuing the other.

Anti-arrhythmics:

Caution should be exercised when administering beta-blockers with Class I anti-arrhythmic drugs and amiodarone as their effect on atrial conduction time and their negative inotropic effect may be potentiated. Such interactions can have life threatening consequences.

Clonidine:

Beta-blockers increase the risk of rebound hypertension after sudden withdrawal of chronic clonidine treatment.

Digitalis:

Digitalis glycosides associated with beta-blockers may increase atrio-ventricular conduction times. Nebivolol does not influence the kinetics of digoxin & clinical trials have not shown any evidence of an interaction.

Special note: Digitalisation of patients receiving long term beta-blocker therapy may be necessary if congestive cardiac failure is likely to develop. The combination can be considered despite the potentiation of the negative chronotropic effect of the two medicines. Careful control of dosages and of individual patient’s response (notably pulse rate) is essential in this situation.

Insulin & Oral Antidiabetic drugs:

Glucose levels are unaffected, however symptoms of hypoglycemia may be masked.

Anaesthetics:

Concomitant use of beta-blockers & anaesthetics e.g. ether, cyclopropane & trichloroethylene may attenuate reflex tachycardia & increase the risk of hypotension

Other:

Provided Nebilet is taken with a meal & an antacid between meals, the two treatments can be co-prescribed.

Sympathicomimetic agents may counteract the effect of beta-blockers.

Concomitant administration of tricyclic antidepressants, barbiturates & phenothiazines may increase the blood pressure lowering effect.

Concomitant administration of serotonin re-uptake inhibitors or other compounds predominantly metabolized by the CYPZD6 pathway may delay oxidative metabolism of beta-blockers

 KNOWN SYMPTOMS OF OVERDOSAGE AND PARTICULARS OF ITS TREATMENT:

Symptoms:

Bradycardia, hypotension, bronchospasm and acute cardiac insufficiency

Treatment:

Blood glucose levels should be checked and symptomatic and supportive therapy given.

CONCLUSIONS

Nebvolol – one of the most interesting antihypertensive drugs on the market in 2012. Worldwide Sales of Nebivolol 2009-2011 in US $ (millions)

2009 – 179

2010 – 264  %increase 48

2011 – 348  %increase 32

http://www.evaluatepharma.com/Universal/View.aspx?type=Entity&entityType=Product&lType=modData&id=9552&componentID=1003

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Gonzalez E, Kou R, Lin AJ, Golan DE, Michel T., (2002). Subcellular Targeting and Agonist-induced Site-specific Phosphorylation of Endothelial Nitric-oxide Synthase. J. Biol. Chem., 277;42:39554-39560.

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McEniery CM, Schmitt M, Qasem A, Webb DJ, Avolio AP, Wilkinson IB, Cockcroft JR, (2004). Nebivolol Increases Arterial Distensibility In Vivo. Hypertension, 44(3): 305 – 310.

Mineo C, Yuhanna IS, Quon MJ, Shaul PW., (2003). HDL-induced eNOS activation is mediated by Akt and MAP kinases. J. Biol. Chem., 278:9142–9149.

Mollnau H, Schulz E, Daiber A, Baldus S, Oelze M, August M, Wendt M, Walter U, Geiger C, Agrawal R, Kleschyov AL, Meinertz T. Munzel T, (2003). Nebivolol Prevents Vascular NOS III Uncoupling in Experimental Hyperlipidemia and Inhibits NADPH Oxidase Activity in Inflammatory Cells. Arterioscler. Thromb. Vasc. Biol., 23(4): 615 – 621.

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Murakami H, Murakami R, Kambe F, Cao X, Takahashi R, Asai T, Hirai T, Numaguchi Y, Okumura K, Seo H, Murohara T., (2006). Fenofibrate activates AMPK and increases eNOS phosphorylation in HUVEC. Biochem Biophys Res Commun., 341(4):973-8. Epub 2006 Jan 24.

Nebivolol is a long-acting, cardioselective beta-blocker currently licensed for the treatment of hypertension.

http://www.saha.org.ar/noticias/nebivolol2.htm  – retrieved on 6/20/2006

Nebivolol

http://www.intekom.com/pharm/adcock/nebilet.html – retrieved on 6/20/2006

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