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Biomedical subjects

G Noll

Publications and source records attributed to G Noll.

At least 19 recordsLinked to original sources

Corrected formula for the calculation of the electrical heart axis.

The calculation of the heart axis in the frontal plane can be performed with the combination of any two leads. The use of combination of bipolar (I, II, III) and unipolar leads (aVR, aVL and aVF) can produce wrong results. Calculation of the electrical axis from leads I and aVF without correction (sometimes used in ECG recorders): EA= Arctan (aVF/I) results in lower values (in our study: 34 4 , n = 48) as compared to the values obtained with formula that uses leads I and II: EA= Arctan ((2*II-I)/(Sqr(3)*I)) (axis = 33+/-7 degrees, n=48; p<0.005, paired t-test with Bonferroni correction) or with corrected formula which uses leads I and aVF: EA=+/-Arctan ((2*aVF)/(Sqr(3)*I)) (axis = 374 degrees, n=48; p<0.005, paired t-test with Bonferroni correction). The correction factor 2/Sqr(3) is required because the unipolar and bipolar leads have different strengths. Although the difference rarely reach clinical significance, our results suggests that the ECG recorders should be proofed on formulas used for the calculation of the electrical axis.

Electrocardiography

Hemodynamic and coronary effects of the endothelin antagonist bosentan in patients with coronary artery disease.

BACKGROUND: Endothelin is a potent endothelium-derived vasoconstrictor peptide with proliferative properties. Elevated levels of the peptide occur in coronary artery disease; however, its pathophysiological role as a regulator of coronary tone and structure is uncertain. Endothelin-receptor antagonists are specific tools to clarify this issue and might be useful in the treatment of coronary artery disease. METHODS AND RESULTS: In a double-blind, placebo-controlled randomized study, we investigated the effects of the ETA/ETB endothelin-receptor antagonist bosentan or placebo on systemic and coronary hemodynamics in 28 patients with angiographically documented stable coronary artery disease by quantitative coronary angiography and an intracoronary Doppler guidewire. Bosentan 200 mg IV decreased systolic blood pressure (P<0. 05), whereas heart rate increased slightly (P<0.05). Coronary diameter increased, particularly in vessels with no or mild angiographic changes (P<0.01). Glycerol trinitrate did not further dilate these segments, whereas coronary diameter increased significantly after nitrate in the placebo group. The increase in coronary diameter after bosentan correlated inversely with plasma LDL-cholesterol levels (P<0.01) in both stenotic and angiographically normal coronary segments. Coronary flow velocity did not change. Bosentan was well tolerated. CONCLUSIONS: Endogenous endothelin exerts a vasoconstrictor tone in epicardial coronary arteries of patients with coronary artery disease, as evidenced by the vasodilation exerted by the combined ETA/ETB endothelin-receptor antagonist bosentan under acute conditions. Bosentan can safely be given to these patients. Hence, further long-term studies are necessary to determine the therapeutic potential of endothelin-receptor antagonists in patients with coronary artery disease.

Antihypertensive Agents

Adoptive immunotherapy of feline leukemia virus infection using autologous lymph node lymphocytes.

Adoptive immunotherapy using autologous cells expanded ex vivo from lymph nodes was examined in cats infected with the retrovirus feline leukemia virus (FeLV). Cells were obtained from popliteal lymph nodes from 18 FeLV-antigen-positive cats without complications; a mean of 6.2 x 10(7) cells were obtained. Lymph node cells were cultured with 600 IU/ml interleukin-2 (IL-2) for 7 days. Cells expanded 0.8- to 11-fold (mean, 2.7; median, 2.4); were 80% +/- 8.0% CD3+, 29% +/- 8.1% CD4+, and 41% +/- 7.0% CD8+, and exhibited cytolytic activity against FeLV-transformed FL74 cells. Sixteen cats received a single intravenous infusion of 0.13 to 3.9 x 10(8) cells. Cell infusion was well tolerated; fever developed approximately 1 hour postinfusion. Clinical activity, antiviral activity, or both was observed in 10 cats. Nine cats had clinical responses with improvement in weight, activity, appearance, or a combination of these that began 2 to 4 weeks after cell infusion and that lasted for up to 13 or more months. FeLV antigen became undetectable in 4 cats. These results indicate that adoptive immunotherapy using autologous lymph node cells, activated and expanded ex vivo in short-term cultures with low concentrations of IL-2, can modulate the course of a retroviral infection.

Animals

[Is arteriosclerosis an infectious disease?].

There are three findings suggesting the inflammatory and immunogenic nature of the atherosclerosis: Firstly the colocalisation of macrophages/monocytes and T-lymphocytes in all phases of the atherosclerosis, starting with intimal damages and developing into the end stage of atheromatous plaques, secondly the production of cytokines and thirdly the expression of MHC II antigens. The persisting chlamydia pneumoniae bacteria infection, which has been repeatedly detected in the intima, sustains this inflammatory process. Endothelial dysfunction and an expression of adhesion molecules, which might have been triggered by the chlamydial infection, could lead to atherosclerotic lesions according to the "response to injury" theory. The chlamydiae specific findings can well be integrated into this concept: Two of three classical Koch postulates are nearly fulfilled. There is additional direct and indirect evidence--particularly the first positive results of oral antibiotic therapy after acute myocardial infarction--suggesting a causative role. The unfavourable changes in the lipid profile, which might be brought about by the infection, may also contribute. Repeated chlamydial reinfections trigger the immune system through the cellular memory of T-lymphocytes sustaining the intramural inflammatory process. This leads to an activation of metalloproteinases with a fissuring on the plaques and finally to thrombosis. If this suggested link is confirmed, the latent chlamydia infections could be another treatable risk factor apart from the classical cardiovascular risk factors.

Acute-Phase Reaction

Pathogenesis of atherosclerosis: a possible relation to infection.

Atherosclerosis is the main underlying cause of coronary heart disease, which in turn is the most common cause of death in the industrialized world. An acute event in coronary heart disease is typically precipitated by thrombosis occurring at the site of atherosclerotic plaque disruption. Atherosclerotic plaques consist of a fibrous cap overlying a lipid-rich core. Many cell types are involved in their formation, including platelets, endothelial cells, activated monocytes, macrophages derived from monocytes and smooth muscle cells. The currently accepted hypothesis is that atherosclerosis develops as a response to injury and that it is primarily a chronic inflammatory condition. The endothelium plays an important role in regulating vascular blood flow and it is now apparent that endothelial dysfunction is an important contributor to the pathogenesis of atherosclerosis. There is growing evidence that infection may be a risk factor for atherosclerosis and myocardial infarction. Numerous studies have reported associations between human coronary heart disease (CHD) and bacterial and viral infections. At present, interest is focused on the potential aetiological role of C. pneumoniae which has been repeatedly identified, using various diagnostic techniques, in atherosclerotic lesions. There is also increasing seroepidemiological evidence of the association between C. pneumoniae and CHD. The role of this organism in atherosclerosis may be analogous to that of chronic C. trachomatis infection in trachoma.

Animals

Endothelin-1 induces vasodilation in human skin by nociceptor fibres and release of nitric oxide.

AIMS: Endothelin is a peptide produced by endothelial cells with many biological properties. In the human skin microcirculation endothelin induces neurogenic vasodilation associated with burning pruritus. We investigated the mechanisms involved in this response. METHODS: The effects of prolonged pretreatment with capsaicin, a specific inhibitor of polimodal nociceptor fibres, and of the nitric oxide synthase inhibitor L-NMMA on endothelin-1-induced vasodilation were studied in 15 human subjects. Furthermore, we investigated the effects of the ET(A)-selective antagonist PD147953 on bradykinin-induced vasodilation. RESULTS: After local injection, endothelin-1 caused vasoconstriction at the injection site and a profound vasodilation in the surrounding area (flare reaction, P<0.01). This response was specific and not induced by saline, albumin, acetylcholine or an ET-antagonist. Prolonged capsaicin pretreatment inhibited endothelin-1 induced vasodilation in the area surrounding the injection site, but not the central vasoconstriction at the injection site. Bradykinin also induced a marked vasodilation in the area surrounding the injection site; this was not inhibited by an ETA-selective antagonist, while the flare reaction was. L-NMMA applied at the site of the flare reaction prevented endothelin-1-induced vasodilation. CONCLUSIONS: Endothelin-1 in the human skin microcirculation stimulates polimodal nociceptor fibres leading to the release of nitric oxide. This response may play a pathophysiological role in inflammatory processes in the human skin.

Adolescent

Endothelial vasoconstrictor prostanoids, vascular reactivity, and acute renal failure.

The interaction of endothelium-derived vasoconstrictor prostaglandins, the angiotensins (Ang), and the sympathetic nervous system in acute renal failure still remains to be determined. In this study, acute renal failure (ARF) was induced in male Wistar Kyoto rats (N = 7) in a 2K/2C model of 30-minute clamping. Contractions to Ang I and II and norepinephrine (NE) were studied in isolated aortic and renal artery rings 24 hours after clamp release. Sham-operated animals served as controls (N = 7). In ARF, contractions to NE were increased in the aorta and even further enhanced in the renal artery (P < 0.05 to 0.001), whereas contractions to Ang I and II were blunted (P < 0.05). Contractions were inhibited by SQ 30741, a thromboxane A2 (TXA2)/prostaglandin H2 (PGH2) receptor antagonist. We conclude that ARF is characterized by abnormal vascular reactivity both in the renal as well as the systemic vasculature that is in part mediated by endothelium-derived vasoconstrictor prostaglandins.

Acute Kidney Injury

Combination of ACE inhibitors and calcium antagonists: a logical approach.

An increasing body of evidence indicates that impairment of endothelial function is crucially involved in the pathogenesis of cardiovascular disease. Injury to the endothelium precipitates atherosclerosis by causing smooth-muscle cell migration and proliferation, induction of expression of growth factors, and impairment of plasma coagulation and endogenous fibrinolysis. Angiotensin-converting enzyme (ACE) inhibitors and calcium antagonists are widely used in patients with cardiovascular disease and have beneficial vascular effects beyond blood pressure control alone. Both exhibit a synergistic hemodynamic profile. Whereas calcium antagonists dilate large conduit and resistance arteries, ACE inhibitors inhibit the renin-angiotensin system (RAS) and reduce sympathetic outflow. Certain calcium antagonists, such as verapamil and diltiazem, reduce heart rate, whereas dihydropyridines tend to increase it. In the blood vessel wall, the local vascular effects of ACE inhibitors and calcium antagonists are complementary. ACE inhibitors diminish transformation of angiotensin I (Ang I) into angiotensin II (Ang II) and prevent degradation of bradykinin [which stimulates nitric oxide (NO) and prostacyclin formation]. Calcium antagonists inhibit the effects of Ang I and endothelin-1 (ET-1) at the level of vascular smooth muscle by reducing Ca2+ inflow and facilitating the vasodilator effects of NO. The resistance circulation is particularly dependent on extracellular Ca2+, thereby explaining why nifedipine and verapamil effectively inhibit ET-induced vasoconstriction in vitro and in vivo. In hypertension, ACE inhibitors and calcium antagonists markedly improve structural changes and increase the media/lumen ratio in resistance arteries. Long-term combination therapy with verapamil and trandolapril is particularly effective in reversing endothelial dysfunction in hypertensive animals. ACE inhibitors substantially reduce morbidity and mortality in patients with left ventricular dysfunction after myocardial infarction (MI). There is a strong trend indicating benefit with verapamil as well, but this is confined to patients with a normal left ventricular ejection fraction. Clinical studies have confirmed that calcium antagonists exhibit antiatherogenic properties. However, the clinical relevance of these findings has recently been disputed because short-acting dihydropyridines are reported to increase risk for MI. Because ACE inhibitors and calcium antagonists exhibit synergistic hemodynamic, antiproliferative, antithrombotic, and antiatherogenic properties, combination therapy provides a promising concept in patients with cardiovascular and renal disease.

Angiotensin II

Endothelium-independent relaxation and hyperpolarization to C-type natriuretic peptide in porcine coronary arteries.

Endothelial cells produce C-type natriuretic peptide (CNP), which has been proposed as an endothelium-derived hyperpolarizing factor. In porcine coronary arteries, we investigated the vasodilatory effects of CNP and compared them with endothelium-dependent relaxations and hyperpolarizations to bradykinin. Isolated epicardial porcine coronary arteries were studied in organ chambers, and concentration-response curves to CNP and bradykinin were obtained. Membrane potential was measured in endothelial cells and smooth muscle of intact porcine coronary arteries during stimulation with CNP or bradykinin. In precontracted porcine coronary arteries with or without endothelium, CNP (10[-10]-10[-6] M) evoked relaxations (maximum, 42 +/- 4%) smaller than those evoked by bradykinin (100 +/- 1%), blunted in preparations contracted by KCl instead of U46619 (9,11-dideoxy-11a,9a-epoxymethano-prostaglandin F2alpha; p < 0.05) and unaffected by inhibition of NO synthase (NS). CNP evoked hyperpolarization of vascular smooth muscle of similar magnitude in endothelium-intact (-4.4 +/- 1 mV) and endothelium-denuded (-4.6 +/- 1 mV) porcine coronary arteries. Bradykinin (10[-10]-10[-6] M) evoked concentration-dependent relaxations in preparations with endothelium only. Although atrial natriuretic peptide-receptor antagonist HS-142-1 (25 microM) slightly reduced the sensitivity to bradykinin (log shift at IC50, twofold; p < 0.05), it had no effect on the maximal response to bradykinin. Inhibition of NO synthase partially attenuated, whereas high potassium chloride (30 mM) markedly inhibited relaxations to bradykinin (p < 0.05). Hyperpolarization to bradykinin was much more pronounced than that to CNP (-17 +/- 3 mV; p < 0.05 vs. CNP) and was observed in endothelium-intact preparations only and unaffected by HS-142-1. In conclusion, in contrast to bradykinin, CNP induces endothelium-independent and weaker relaxation and hyperpolarization of coronary artery vascular smooth muscle, suggesting that CNP is an unlikely mediator of endothelium-dependent hyperpolarization of porcine coronary arteries.

Animals

Comparative pharmacological properties among calcium channel blockers: T-channel versus L-channel blockade.

Calcium antagonists are potent vasodilators and are widely used in the treatment of hypertension and angina pectoris. The currently available compounds belong to three classes: (1) dihydropyridines (e.g. nifedipine, amlodipine and felodipine), (2) phenylalkylamines (e.g. verapamil) and (3) benzothiazepines (e.g. diltiazem). The three classes differ in their pharmacological profile and safety. For example, verapamil and diltiazem lower heart rate, while dihydropyridines increase it or leave it unchanged. With most of the latter compounds, a marked activation of the sympathetic nervous system has been noted. Most compounds exhibit negative inotropic effects, particularly the first-generation molecules, which is disadvantageous in patients with impaired left-ventricular function. The most common side effects of these drugs are flushing, headache and edema. With verapamil, constipation may represent a problem in certain patients. Hence, in spite of a large number of calcium antagonists available, there remains a need for new compounds with enhanced efficacy and improved tolerability. A new compound should lack any negative inotropism, avoid any increase in sympathetic outflow or heart rate and exhibit a high degree of vascular selectivity. Furthermore, a low incidence of side effects, particularly ankle edema and optimal pharmacokinetics allowing once-daily dosing would be desirable. Mibefradil is a new calcium antagonist with promising pharmacological and clinical properties. The compound has a high bioavailability, lacks negative inotropic effects at therapeutic concentrations, does not exhibit reflex tachycardia during vasodilation and actually slightly decreases heart rate. It is a potent direct vasodilator efficacious in hypertension and chronic angina pectoris, elicits endothelium-dependent relaxations and facilitates the effects of nitric oxide in vascular smooth muscle. The drug is a particularly efficacious vasodilator in intramyocardial coronary arteries which may be important for its anti-ischemic effects and the lack of steal in the coronary circulation. Furthermore, mibefradil has antiproliferative properties in human vascular smooth muscle cells in culture. As a unique property, mibefradil blocks T-type calcium channels and hence represents a new class of calcium channel blockers. In patients with hypertension, mibefradil has a high efficacy in controlling blood pressure. The drug does not cause constipation and has a low incidence of ankle edema. A large trial is under way to further delineate the properties of this new calcium antagonist in patients with heart failure.

Animals

I1-imidazoline agonist moxonidine decreases sympathetic nerve activity and blood pressure in hypertensives.

Moxonidine is an I1-imidazoline receptor agonist that reduces blood pressure in hypertensives. Experimental data suggest that moxonidine inhibits central sympathetic activity. However, whether such a mechanism is involved in vivo in humans is still unclear. We investigated the effects of 0.4 mg moxonidine orally on muscle sympathetic nerve activity and heart rate in an open study in 8 healthy volunteers. Furthermore, we studied the effects of 0.4 mg moxonidine on muscle sympathetic nerve activity, heart rate, blood pressure, 24-hour blood pressure profile, and hormone plasma levels in 25 untreated hypertensives in a double-blind, placebo-controlled study. Moxonidine decreased muscle sympathetic nerve activity in both healthy volunteers (P<0.05 versus baseline) and hypertensives (P<0.02 versus placebo). Plasma norepinephrine also decreased (P<0. 01), whereas plasma epinephrine and renin levels did not change (P=NS). Furthermore, moxonidine decreased systolic (P<0.0001) and diastolic (P<0.001) blood pressure. Heart rate decreased after moxonidine in healthy subjects (P<0.05); in hypertensives, heart rate decreased during the night hours (P<0.05) but not during daytime (P=NS). Plasma levels of LDL, HDL, and total cholesterol were not influenced by the drug (P=NS). Moxonidine decreases systolic and diastolic blood pressure by inhibiting central nervous sympathetic activity. This makes this new drug suitable for the treatment of human hypertension and possibly for other cardiovascular diseases with increased sympathetic nerve activity, ie, ischemic heart disease and heart failure.

Adult

Calcium antagonists and sympathetic nerve activation: are there differences between classes?

ACTIONS OF THE SYMPATHETIC NERVOUS SYSTEM: The sympathetic nervous system is an important cardiovascular regulator, particularly during stress and exercise; its sympathetic nervous activity is regulated in centers in the brain stem and transmitted to organs and blood vessels that are innervated by sympathetic nerve endings. In the heart, the sympathetic nervous system increases heart rate and contractility. The effect of the sympathetic nervous system in different vascular beds depends on the degree of innervation, the distribution of postjunctional receptors and the effect of local mediators. Overactivation of the sympathetic nervous system may lead to hypertension and is involved in heart failure. The degree of sympathetic activation determines prognosis in heart failure. Hence, vasodilators ideally should also blunt sympathetic activity, or at least avoid activating it. DIFFERENCES AMONG CALCIUM ANTAGONISTS: Calcium antagonists are widely used for the treatment of hypertension and coronary artery disease. Their main mechanism of action is inhibition of L-type Ca2+ channels. Short-acting nifedipine leads to a marked increase in heart rate, sympathetic nerve activity and plasma catecholamines, similar to those induced by a cold pressor test. With long-acting nifedipine heart rate does not increase, but sympathetic nerve activity does increase. Other calcium antagonists have been less thoroughly investigated, but indirect evidence suggests differences between the different classes. Verapamil and diltiazem lower heart rate. Plasma noradrenalin measurements suggest that verapamil does not stimulate the sympathetic nervous system, but tends to suppress it. Second-generation dihydropyridines with longer duration of action do not increase heart rate; their effects on peripheral sympathetic nerve activity are not clear. Thus, in summary, the different classes of calcium antagonists differ with regard to their effects on sympathetic nerve activation. A decrease in heart rate and nerve activity might be beneficial for long-term prognosis, particularly in hypertension and heart failure.

Blood Circulation

The endothelium in acute coronary syndromes.

The coronary circulation is controlled by the central nervous system, circulating hormones and local vascular mechanisms. The importance of local regulatory mechanisms has only recently been recognized. The endothelium is in a strategical anatomical position within the blood vessel wall located between the circulating blood and vascular smooth muscle cells. It can respond to mechanical and hormonal signals from the blood; of particular importance is the fact that it is a source of mediators which can modulate the contractile state and proliferative responses of vascular smooth muscle cells, platelet function and coagulation as well as monocyte adhesion. Important relaxing factors are nitric oxide and prostacyclin and a putative hyperpolarizing factor. Nitric oxide also inhibits smooth muscle proliferation and, together with prostacyclin, platelet adhesion and aggregation. Bradykinin-induced nitric oxide production is regulated by angiotensin converting enzyme located on the endothelial cell membrane; indeed, the enzyme not only activates angiotensin I into angiotensin II, but also inactivates bradykinin. Endothelin-1 and thromboxane A2 and prostaglandin H2 are contracting factors produced by the endothelium. In contrast to thromboxane A2 and prostaglandin H2 which activate platelets, endothelin has no direct effects on these cells, but has proliferative properties in vascular smooth muscle. Under physiological conditions, the endothelium plays a protective role as it prevents adhesion of circulating blood cells, keeps the vasculature in a vasodilated state and inhibits vascular smooth muscle proliferation. In disease states, however, endothelial dysfunction contributes to enhanced vasoconstrictor responses, adhesion of platelets and monocytes and proliferation of vascular smooth muscle cells, events all known to occur in coronary artery disease. Nitrates substitute in part for deficient endogenous nitric oxide, while angiotensin converting enzyme inhibitors increase the bradykinin induced nitric oxide and prostacyclin production. The newly developed endothelin antagonists allow specific blocking of the effects of endothelin. Pharmacological correction of endothelial dysfunction may be important to treat coronary artery disease and its complications.

Acute Disease

Role of sympathetic nervous system in hypertension and effects of cardiovascular drugs.

The sympathetic nervous system (SNS) plays an important role in the regulation of cardiac performance and peripheral circulation. Changes in SNS activity measured as catecholamines in plasma or organ spillover have been implicated in the pathogenesis of hypertension. Recent studies using microneurography to directly assess peripheral sympathetic nerve activity have demonstrated an increase in sympathetic activity in patients with borderline hypertension at rest and during hypoxia. We have recently shown that resting muscle sympathetic nerve activity is comparable in offspring of hypertensive and normotensive parents. However, during mental arithmetic the increase in muscle sympathetic nerve activity and blood pressure was significantly more pronounced in offspring of hypertensive than in offspring of normotensive parents, but resting blood pressure was in the normotensive range and comparable in both groups. These data indicate that the response to mental stress results in a more pronounced activation of SNS in normotensive subjects with a genetic background of hypertension. In other cardiovascular disease states such as acute myocardial infarction and heart failure activity of the SNS may determine prognosis significantly. Some calcium antagonists which are successfully used to treat patients with hypertension and stable angina pectoris may have unfavourable effects in patients with impaired left ventricular function. This could be due in part to baroreceptor-mediated activation of the SNS, an effect which seems to be related to pharmacokinetics and pharmacodynamics of the drugs. In contrast, angiotensin converting enzyme inhibitors seem to directly decrease sympathetic nerve activity. This may explain at least in part their beneficial effects in patients with impaired left ventricular function. Thus, the SNS as a regulator of the cardiovascular system also plays an important role in the pathophysiology of cardiovascular diseases such as hypertension, myocardial infarction and heart failure. Furthermore, drug therapy could have a significant impact on the activity of the SNS.

Arousal

[Sympathy and heartache: new information on the sympathetic nervous system].

The sympathetic nervous system is an important regulator of the circulation. Interactions with other regulating systems, e.g. the renin angiotensin system, play important roles. By means of microneurography, sympathetic activity in humans can be assessed directly in the nerve. Insights into the dynamic regulation of the circulation under physiological and pathophysiological conditions are possible. Activation of the sympathetic nervous system in cardiovascular diseases affects course, prognosis, and therapy. Prognosis in heart failure depends on sympathetic activation, which can be decreased by inhibition of angiotensin II synthesis by ACE-inhibitors. In contrast to nitrates, these drugs do not increase sympathetic activity. The sympathetic nervous system is also heavily involved in the pathogenesis of hypertension. Borderline hypertensives and offspring of hypertensive parents show increased sympathetic nerve activities. Investigation of the sympathetic nervous system under physiological and pathophysiological conditions may serve as a basis for new therapeutic strategies.

Cardiovascular Agents

Differential effects of captopril and nitrates on muscle sympathetic nerve activity in volunteers.

BACKGROUND: The sympathetic nervous system (SNS) is an important regulator of cardiovascular function. Activation of SNS plays an important role in the pathophysiology and the prognosis of cardiovascular diseases such as heart failure, acute coronary syndromes, arrhythmia, and possibly hypertension. Vasodilators such as adenosine and sodium nitroprusside are known to activate SNS via baroreflex mechanisms. Because vasodilators are widely used in the treatment of patients with cardiovascular diseases, the aim of the present study was to assess the influence of clinically used dosages of isosorbide dinitrate and captopril on sympathetic nerve activity at rest and during stimulatory maneuvers. METHODS AND RESULTS: Twenty-eight healthy volunteers were included in this double-blind placebo-controlled study, and muscle sympathetic nerve activity (MSA; with microelectrodes in the peroneal nerve), blood pressure, heart rate, and neurohumoral parameters were measured before and 90 minutes after the oral administration of 40 mg isosorbide dinitrate or 6.25 mg captopril. Furthermore, a 3-minute mental stress test and a cold pressor test were performed before and 90 minutes after drug administration. Resting MSA did not change after captopril and decreased compared with placebo (P < .05 versus placebo), whereas isosorbide dinitrate led to a marked increase in MSA (P < .05). Systolic blood pressure was reduced by isosorbide dinitrate (P < .05), whereas captopril decreased diastolic blood pressure (P < .05). The increases in MSA, blood pressure, and heart rate during mental stress were comparable before and after drug administration regardless of the medication. During cold pressor test, MSA and systolic and diastolic blood pressures increased to the same degree independent of treatment, but after isosorbide dinitrate, the increase in MSA seemed to be less pronounced. Heart rate did not change during cold stimulation. Plasma renin activity increased after captopril and isosorbide dinitrate (P < .05), whereas placebo had no effect. Endothelin-1 increased after placebo and isosorbide dinitrate (P < .05) but not after captopril. CONCLUSIONS: Thus, captopril suppressed MSA despite lowering of diastolic blood pressure but allowed normal adaptation of the SNS during mental or physical stress. In contrast, the nitrate strongly activated the SNS under baseline conditions. These findings demonstrate that vasodilators differentially interact with the SNS, which could be of importance in therapeutic strategies for the treatment of patients with cardiovascular diseases.

Adult

[Pharmacotherapy of arteriosclerosis and its complications. Effect of ACE inhibitors and HMG-CoA-reductase inhibitors].

Atherosclerosis and its consequences account for most of the morbidity and mortality in Western countries. It is a disease of the intima and primarily involves four cell types, i.e., endothelial and vascular smooth muscle cells, monocytes and platelets. In recent years, knowledge on the cellular and molecular mechanisms of these cells and their alterations by cardiovascular risk factors and in atherosclerosis has greatly expanded. In particular, it has become clear that endothelial cells play a crucial role in the regulation of platelet function, coagulation, and vascular tone and structure. Interestingly, endothelial dysfunction occurs early, particularly if cardiovascular risk factors such as hyperlipidemia, hypertension and diabetes are present. This could lead to adhesion of circulating platelets and monocytes and increased accumulation of lipids in the intima, as well as increased contraction, migration and proliferation of vascular smooth muscle cells. One of the enzymes with a key role in vascular homeostasis is angiotensin I converting enzyme (ACE). ACE is located on the endothelial cell membrane and is responsible for the conversion of angiotensin I into angiotensin II, as well as for the breakdown of bradykinin. While the antihypertensive effect of ACE inhibitors probably contributes to their antiatherogenic effects, other mechanisms are likely to be of greater importance. These direct antiatherogenic effects attributable to ACE inhibition are related to their vasculoprotective properties, including antiproliferative and antimitogenic activity, effects on endothelial function, protection against plaque rupture, antithrombotic effects, and possible antioxidant properties. There is overwhelming evidence to demonstrate the beneficial effects of long-term ACE inhibitor treatment in heart failure, acutely for suspected myocardial infarction (MI), and following MI in patients with left ventricular dysfunction. Hypercholesterolemia is a health risk, and epidemiological studies have shown a line between total cholesterol levels and the risk of cardiac events. Studies have shown that lowering the levels of total and low-density lipoprotein cholesterol using HMG-CoA reductase inhibitors can result in a decrease in cardiac morbidity and mortality. Angiographic studies of coronary arteries have demonstrated a disparity between the decrease in cardiac events and the extent of regression of coronary artery lesions. Mechanisms other than the regression of coronary stenosis may therefore be important in the beneficial effect of cholesterol lowering. It may be of major importance that lipid-lowering therapy is associated with improved endothelial function and decreased platelet activity. Thus, both ACE inhibitors and HMG-CoA reductase inhibitors have vasculoprotective properties which may explain their beneficial effects on cardiovascular morbidity and mortality.

Angiotensin-Converting Enzyme Inhibitors

Different effects of thrombin receptor activation on endothelium and smooth muscle cells of human coronary bypass vessels. Implications for venous bypass graft failure.

BACKGROUND: Thrombin is implicated in coronary bypass graft disease; it cleaves its receptor's extracellular N-terminal domain and unmasks a new N-terminus as a tethered ligand. We studied the effects of thrombin receptor activation in human internal mammary artery (IMA) and saphenous vein (SV). METHODS AND RESULTS: To study the effects of thrombin receptor activation on vasomotion, isolated blood vessels were suspended for isometric tension recording, and the effects on cell proliferation were studied in cultured smooth muscle cells (SMCs) of IMA and SV. Thrombin receptor expression in IMA and SV was analyzed by reverse transcription polymerase chain reaction and immunohistology. Receptor function was studied by analyzing the activation of mitogen-activated protein kinase (p42MAPK). In IMA thrombin evoked endothelium-dependent relaxations (65 +/- 5%) that were mimicked by thrombin receptor agonist peptide (TRAP) and reduced by the thrombin inhibitors recombinant (r-) hirudin and D-Phe-Pro-Arg-chloromethyl ketone (PPACK) (P < .05). In SV thrombin caused contractions (36 +/- 5% of 100 mmol/L KCl) that were inhibited by r-hirudin or PPACK (P < .05) but not mimicked by TRAP. In SMCs thrombin induced more pronounced [3H]thymidine incorporation (inhibited by r-hirudin or PPACK) in SV than IMA (P < .05), but activation of p42MAPK was similar in both vessels. TRAP induced weaker activation of p42MAPK than thrombin and did not stimulate [3H]thymidine incorporation in SMCs of SV or IMA. Immunohistology and RT-PCR demonstrated that the endothelium and SMCs of IMA and SV express thrombin receptor. CONCLUSIONS: Functional thrombin receptors are present on endothelium and SMCs of IMA and SV. Endothelial thrombin receptors mediate relaxation in IMA but not SV. Thrombin causes much more pronounced contraction and proliferation in SMCs of SV than IMA independent of tethered receptors, suggesting other thrombin receptors exist. These differences of thrombin receptor activation in IMA and SV may be important in the development of and therapy for graft disease.

Amino Acid Chloromethyl Ketones