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H Schunkert

Publications and source records attributed to H Schunkert.

At least 109 records · Page 6Linked to original sources

Adaptive and genetic alterations of the renin angiotensin system in cardiac hypertrophy and failure.

The risk to suffer from cardiovascular events may be modulated, in part, by neurohormonal systems. Neurohormones such as angiotensin II or aldosterone may be activated secondary to congestive heart failure or in the course of an acute myocardial infarction. These systems, if activated, will subject the failing heart to increased hemodynamic load and, thus, further compromise cardiac function. In addition, structural changes of the heart and vessels occurring with pressure or volume overload may be amplified by the growth promoting effects of these agents. Taken together, the interaction of underlying cardiovascular disease and activated neurohormones may often determine clinical symptoms and prognosis. More recently, growing evidence suggests that the basal, genetically determined, activity of the renin angiotensin aldosterone system may relate to the development of cardiovascular disease as well. In particular, variants of the angiotensinogen and angiotensin converting enzyme genes have been associated with essential hypertension, myocardial infarction, or left ventricular hypertrophy. In this regard, the data suggest that the renin angiotensin aldosterone system may be one of the primary causes, rather than only a secondary co-factor, in the pathogenesis of these most important cardiovascular disorders. In light of the various options of pharmacological intervention, it seems important that ongoing clinical and molecular-genetic research will further define the role of the renin angiotensin system in clinical conditions or genetic risk profiles.

Angiotensin-Converting Enzyme Inhibitors↗

Functional activity and expression of the myocardial postreceptor adenylyl cyclase system in pressure overload hypertrophy in rat.

OBJECTIVE: The aim of the present study was to investigate the functional regulation of the myocardial postreceptor adenylyl cyclase (AC) system in compensated left ventricular hypertrophy (LVH) and the effect of long-term angiotensin converting enzyme (ACE) inhibition. METHODS: Pressure overload LVH was induced in rats by supravalvular aortic banding for 12 weeks. At 12 weeks left ventricular function and inner diameters were analyzed by echocardiography of anesthetized animals, and responsiveness to forskolin (systolic developed pressure) was determined in isolated perfused hearts. Functional activities of AC and the stimulatory G protein Gs were measured as well as mRNA expression (quantitative slot blot analyses) of AC type V, isoforms of Gs alpha and Gi alpha 2. G protein alpha-subunits were also quantified by immunoblotting. Rats were treated with ramipril (Ram, 10 mg/kg per day p.o.) during weeks 7 to 12 to induce regression of LVH or with vehicle (Veh, tap water). RESULTS: Pressure overload induced severe LVH (3.2 +/- 0.09 g/kg in Veh vs. 1.8 +/- 0.03 in sham; P < 0.05) which was significantly reduced by ramipril (2.7 +/- 0.09; P < 0.05 vs. Veh). In-vivo left ventricular function and diameters were unchanged in LVH. In contrast, in hearts with LVH, responsiveness of left ventricles to forskolin was attenuated and basal, GTP gamma S and forskolin as well as manganese chloride-stimulated adenylyl cyclase activity was significantly downregulated by approximately 40% (basal 20.8 +/- 1.9 pmol cAMP/mg per min vs. 34.0 +/- 2.2 in sham; P < 0.01). However, no significant changes of AC type V mRNA were found in hypertrophied left ventricles. Functional activity of the stimulatory G protein Gs was reduced in LVH (48 +/- 7 pmol cAMP/mg per min in Veh vs. 68 +/- 3 in sham), whereas mRNA expression of long and short Gs alpha-isoforms was not altered and that of Gi alpha 2 was only slightly increased in ramipril-treated animals. Western analysis showed no significant differences of Gs alpha or Gi alpha 2 subunits. Long-term blockade of the renin-angiotensin system had no effect on the activity of the adenylyl cyclase system. CONCLUSIONS: Functional desensitization of adenylyl cyclase and stimulatory G protein occurred in rat adaptive LVH prior to the onset of severe left ventricular dysfunction which was not restored by ACE-inhibitor treatment. The desensitization seems not to be mediated by significant changes of mRNA expression of AC type V or abundance of regulatory G proteins.

Adenylyl Cyclases↗

The deletion polymorphism of the angiotensin-converting enzyme gene is related to phenotypic differences in human arteries.

We hypothesized that angiotensin-converting enzyme (ACE) insertion/deletion polymorphism may be related to arterial phenotypic differences that could explain the adverse effects of deletion polymorphism. Accordingly, contractile responses to angiotensin I and II (0.1 nmol.1(-1)-1 micromol.1(-1), endothelium-dependent relaxation to methacholine (0.01-100 micromol.1(-1), and the effect of NG-monomethyl-L-arginine (L-NMMA; 100 micromol.1(-1) on phenylephrine (10 micromol.1(-1) induced contraction, were studied in isolated rings of internal mammary arteries obtained from patients undergoing coronary bypass surgery. The results were analysed according to the ACE genotype of the patient (II, n = 8; ID, n = 11; DD, n = 9) as well as the presence/absence of either allele. The arteries from patients with the D allele (ID/DD) displayed a lower sensitivity to methacholine (P < 0.05 vs II), which suggested that the capacity of the endothelium for nitric oxide release in response to stimulation was also lower. By contrast, the increase in phenylephrine-induced contraction, by pre-incubation with L-NMMA, was more pronounced in the group with the DD allele (31 +/- 5%) than with the ID (11 +/- 11%) and II alleles (1 +/- 11%, P < 0.05 vs DD), which suggested a higher level of basal nitric oxide release. Finally, the differences in the responses to angiotensin I and II, which were used to evaluate the vascular conversion of angiotensin I, indicated that the level of angiotensin I conversion was higher in patients with the D allele (ID/DD, P < 0.05 vs II). The findings of this study indicate that ACE insertion/deletion polymorphism is related to arterial phenotypic differences in endothelial function and angiotensin I conversion.

Angiotensins↗

Angiotensin II receptor gene expression in hypertrophied left ventricles of rat hearts.

OBJECTIVE: To examine the expression of angiotensin II AT1a, AT1b and AT2 receptor genes in the left ventricles of rats subjected to ventricular pressure overloading induced by aortic banding for 6 weeks and then 6 weeks medical treatment. RESULTS: Aortic banding was related to an increase in relative weight of the left ventricle from 1.73 +/- 0.06 (sham-operated) to 2.81 +/- 0.25 g/kg, an increase in beta-myosin: alpha-myosin messenger RNA (mRNA) ratio from 0.30 +/- 0.02 to 1.94 +/- 0.55 and an 18-fold increase in left ventricular atrial natriuretic peptide mRNA levels. In contrast, left ventricular pressure overload hypertrophy was not related to a significant change in the abundance of AT1a and AT1b mRNA, which were expressed in a relative ratio of 5:1. Similarly, the abundance of AT2 mRNA was not significantly changed in hypertrophied ventricles. In rats receiving the angiotensin II AT, receptor antagonist losartan (40 mg/kg) for 6 weeks after banding, relative heart weights were 2.39 +/- 0.14 g/kg, the beta-myosin: alpha-myosin ratio was 1.04 +/- 0.20 and atrial natriuretic peptide mRNA levels displayed a blunted increase (11-fold over sham-treated controls), documenting a significant amelioration of left ventricular hypertrophy by blockade of the AT1 receptor. CONCLUSION: Losartan treatment in parallel did not affect AT1a, AT1b and AT2 receptor mRNA levels, which were not different from those in vehicle-treated or sham-treated controls. These findings confirm that left ventricular hypertrophy in the rat is associated with increased ventricular expression of beta-myosin and of atrial natriuretic peptide and with reduced expression of alpha-myosin. Despite these significant changes in cardiac gene expression no alteration was observed in AT1a, AT1b and AT2 receptor mRNA levels.

Angiotensin II↗

Association of angiotensin converting enzyme activity and arterial blood pressure in a population-based sample.

OBJECTIVE: To investigate the relationship between circulating angiotensin converting enzyme activity and arterial blood pressure in a population-based sample of 646 middle-aged subjects. RESULTS: After exclusion of subjects taking antihypertensive medication and those with electrocardiographic evidence of myocardial infarction, univariate analyses revealed that systolic blood pressure was significantly correlated with age and with body mass index. Also, angiotensin converting enzyme activity in men (n = 230) was found to be related both to systolic and to diastolic blood pressure. Inclusion of all of the men slightly strengthened the association between angiotensin converting enzyme activity and systolic or diastolic blood pressure. Multilinear regression models that included age, body mass index and antihypertensive therapy as obligatory covariates confirmed an independent correlation between angiotensin converting enzyme activity and systolic or diastolic blood pressure in the men. Furthermore, untreated men from the highest quartile of angiotensin converting enzyme activity displayed significantly higher mean systolic and diastolic blood pressure values than did those from lower quartiles, even after adjustment for covariates. In contrast, untreated women (n = 264) displayed no evidence for such associations between angiotensin converting enzyme activity and blood pressure. CONCLUSION: The data suggest that the variability of serum angiotensin converting enzyme activity occurring in this large population-based sample might be related to the level of arterial blood pressure levels in men.

Aged↗

[Sex differences in the correlation between obesity and hypertension with left ventricular mass and hypertrophy].

Overweight and hypertension are considered to be independent contributors to the development of left ventricular hypertrophy (LVH). We investigated a selected subgroup (n = 520, aged 52 to 67 years) of participants from the MONICA Augsburg cohort to assess gender-specificity of left ventricular adaptation in response to increasing weight and blood pressure degrees. M-mode-echocardiographic measurements were made and calculated according to the Penn-convention in 293 women and 227 men. LVH was defined as left ventricular mass indexed to height (LVMIm) > 143 g/m in men and > 102 g/m in women (Framingham criteria). Men and women were comparable with regard to increase in LVMIm from the lowest weight and blood pressure group to the highest groups, respectively. In men the increase in LVMIm was 31% from lean to severely obese subjects (111 vs. 145 g/m, p < 0.003) and 25% from normotensive to treated hypertensive subjects (116 vs. 145 g/m, p < 0.0001); in women respective values were 36% (83 vs. 113 g/m, p < 0.0001) and 27% (88 vs. 112 g/m, p < 0.0001). The combined occurrence of obesity and hypertension had an additional effect on left ventricular mass, which was much more pronounced in women than in men. In particular, the increase in LVMIm from the group of lean normotensives to the group of severely obese treated hypertensives was 85% (72 g/m vs. 133 g/m, p < 0.0001) in women and 49% (96 g/m vs. 144 g/m, p < 0.002) in men (p-value for the gender-interaction term < 0.05). The odds ratio for the LVH-prevalence in hypertensive obese subjects as opposed to normal weight normotensive subjects were 11.9 (p < 0.0001) in women and 4.9 (p < 0.0004) in men. In conclusion, we observed for both genders independently and similarly pronounced effects of hypertension and obesity. The combined occurrence of hypertension and obesity had an additional impact on left ventricular mass and hypertrophy, however, in women the effects were significantly more pronounced than in men. The data underscore the effects of hypertension and obesity in the development of LVH. In addition, gender specific factors seem to modulate the effects of these risk factors on left ventricular mass.

Aged↗

Angiotensin-converting enzyme in the human heart. Effect of the deletion/insertion polymorphism.

BACKGROUND: An insertion (I)/deletion (D) polymorphism of the angiotensin-converting enzyme (ACE) gene has been associated with differences in the plasma levels of ACE as well as with myocardial infarction, cardiomyopathy, left ventricular hypertrophy, and coronary artery disease. METHODS AND RESULTS: We determined the cardiac ACE activity and the ACE genotype in 71 subjects who died of noncardiac disorders. Cardiac ACE activity was significantly higher (P < .01) in subjects with the ACE DD genotype (12.7 +/- 1.9 mU/g wet wt) compared with subjects with the ID (8.7 +/- 0.8 mU/g) and the II (9.1 +/- 1.0 mU/g) genotypes. This difference was independent of sex, age, and the time required for tissue collection. CONCLUSIONS: Cardiac ACE activity is highest in subjects with the DD genotype. Elevated cardiac ACE activity in these subjects may result in increased cardiac angiotensin II levels, and this may be a mechanism underlying the reported association between the ACE deletion polymorphism and the increased risk for several cardiovascular disorders.

Adolescent↗

Deletion-type allele of the angiotensin-converting enzyme gene is associated with progressive ventricular dilation after anterior myocardial infarction. Captopril and Thrombolysis Study Investigators.

OBJECTIVES: This study sought to determine whether patients who are homozygous for the deletion (D)-type allele of the angiotensin-converting enzyme gene display augmented ventricular dilation after myocardial infarction. BACKGROUND: Recent evidence suggests that the deletion-type allele of the angiotensin-converting enzyme gene (DD genotype) is associated with an increased prevalence of myocardial infarction and myocardial hypertrophy. However, it is unknown whether the DD genotype is associated with adverse cardiac remodeling. To address this question we determined the genotype in patients enrolled in the Captopril and Thrombolysis Study (CATS), a prospective trial in which patients received either captopril or placebo during and after thrombolysis for a first anterior myocardial infarction. METHODS: Cardiac volume was determined by echocardiography immediately after thrombolysis and at 1-year follow-up. The genotype for the angiotensin-converting enzyme was determined in 96 patients. Norepinephrine levels were assessed during and immediately after thrombolysis. RESULTS: Immediately after thrombolysis, cardiac volume did not differ between genotype groups. However, at 1-year follow-up, both end-systolic and end-diastolic left ventricular volumes were significantly greater in the DD-genotype group. Norepinephrine increased to higher levels in the DD-genotype group that received placebo therapy. Captopril treatment effectively blunted both the norepinephrine increase and cardiac dilation in the DD-genotype group. CONCLUSIONS: This exploratory study suggests that homozygosity for the angiotensin-converting enzyme deletion-type allele is associated with augmented neurohumoral activation as well as augmented cardiac dilation after an acute anterior myocardial infarction, an effect that may be susceptible to angiotensin-converting enzyme inhibition.

Alleles↗

Blockade of the renin-angiotensin system in cardiac pressure-overload hypertrophy in rats.

Left ventricular hypertrophy in response to pressure overload may be modified by neurohumoral activation. To investigate the contribution of the renin-angiotensin system, we studied rats after banding of the ascending aorta that developed severe left ventricular hypertrophy associated with normal plasma renin but elevated cardiac angiotensin-converting enzyme (ACE) levels. Rats were treated with vehicle, ACE inhibitor (ramipril), angiotensin II type 1 receptor antagonist (losartan), or vasodilator (hydralazine) during weeks 7 through 12 after aortic banding. A significant regression of left ventricular mass index as determined by serial echocardiography was observed in ramipril- and losartan-treated groups during weeks 9 through 12 after banding, whereas hypertrophy further increased in vehicle- and hydralazine-treated groups. Twelve weeks after banding, relative left ventricular weights and myocyte widths were markedly increased in vehicle- and hydralazine-treated groups, whereas ramipril and losartan significantly reduced these parameters. In addition, molecular adaptations in left ventricular hypertrophy, such as upregulation of left ventricular atrial natriuretic peptide and downregulation of sarcoplasmic reticulum Ca(2+)-ATPase mRNA levels, were blunted by ramipril or losartan treatment. Hypertrophic regression was associated with reduced mortality in rats treated with ramipril (11%) and losartan (13%) versus hydralazine (20%) and vehicle (31%). Thus, the renin-angiotensin system may be involved in the maintenance of chronic left ventricular hypertrophy. Blockade of the system may result in regression of the hypertrophic phenotype and improve survival in rats despite persistent pressure overload.

Animals↗

Angiotensin II-induced growth responses in isolated adult rat hearts. Evidence for load-independent induction of cardiac protein synthesis by angiotensin II.

Cardiac myocyte hypertrophy often occurs in response to both hemodynamic and neurohumoral factors. To study whether activation of the renin-angiotensin system by itself may induce a cardiac growth response, the acute effects of angiotensin II on cardiac protein synthesis were studied in isolated rat hearts. New protein synthesis in isolated buffer-perfused adult rat hearts was measured by incorporation of [3H]phenylalanine into cardiac proteins during a 3-hour perfusion protocol. Angiotensin II (1 x 10(-8) mol/L), administered alone or in combination with the alpha 1-blocker prazosin (1 x 10(-7) mol/L), stimulated protein synthesis in both ventricles. The rate of [3H]phenylalanine incorporation into cardiac proteins was 3.9-fold (P < .005) and 2.6-fold (P < .01) higher in angiotensin II-perfused (n = 6) than in vehicle-perfused (n = 6) left and right ventricles, respectively. The induction of new protein synthesis by angiotensin II was blocked by the angiotensin II type 1 (AT1) receptor antagonist losartan (1 x 10(-7) mol/L, n = 5). To study the pathways of angiotensin signal transduction, protein kinase C (PKC)-epsilon as well as cardiac c-fos and c-jun mRNA levels were analyzed. Angiotensin II (1 x 10(-8) mol/L, n = 20) resulted in a transient translocation of PKC-epsilon from the cytosol to the cellular membrane. However, compared with phorbol ester stimulation (phorbol 12-myristate 13-acetate [PMA], 1 x 10(-7) mol/L; n = 20), angiotensin II effects on PKC translocation were significantly less pronounced and required a more prolonged stimulation.(ABSTRACT TRUNCATED AT 250 WORDS)

Amino Acids↗

Alteration of growth responses in established cardiac pressure overload hypertrophy in rats with aortic banding.

We examined the acute effects of elevated wall stress, norepinephrine, and angiotensin II on cardiac protein synthesis as well as protooncogene expression in hearts with established pressure overload left ventricular hypertrophy. Isolated rat hearts with chronic hypertrophy (LVH) were studied 12 wk after ascending aortic banding when systolic function was fully maintained. New protein synthesis (incorporation of [3H]phenylalanine [Phe]) was analyzed in isolated perfused rat hearts after a 3-h protocol; c-fos, c-jun, c-myc, and early growth response gene-1 (EGR-1) mRNA levels (Northern blot) were studied over a time course from 15 to 240 min of perfusion. Under baseline conditions (i.e., before mechanical or neurohormonal stimulation), [3H]-Phe-incorporation (280 nmoles/gram protein/h) and protooncogene mRNA levels were similar in age-matched control and LVH hearts. However, hearts with chronic LVH were characterized by a markedly blunted or absent [3H]-Phe-incorporation after acute imposition of isovolumic systolic load (90 mmHg/gram left ventricle), as well as norepinephrine (10(-6)M), or angiotensin II infusion (10(-8)M plus prazosin 10(-7)M) compared with nonhypertrophied control hearts. Similarly, stimulation of LVH hearts with acute systolic load or norepinephrine was associated with a significantly blunted increase of protooncogene mRNA levels relative to control hearts. The blunted induction of c-fos mRNA in LVH hearts was not due to feedback inhibition, since cycloheximide perfusion of hearts exposed to elevated wall stress further increased the differences between age-matched control and LVH hearts. The data suggest that acute molecular growth responses to mechanical or neurohormonal stimulation are altered in rat hearts with established LVH relative to nonhypertrophied control hearts. This alteration of molecular adaptations in hearts with compensatory hypertrophy may prevent inappropriate excess cardiac growth in response to mechanical and neurohormonal stimuli.

Angiotensin II↗

Central vasopressin in experimental aortic stenosis in the rat.

OBJECTIVE: In several forms of heart disease characterised by low cardiac output, activated neurohumoral systems including increased vasopressin plasma levels play a key role in the changes in cardiovascular function. The aim of this study was to test the hypothesis that under such conditions the central vasopressin system might also be altered, which could contribute to deranged cardiovascular control. METHODS: Aortic stenosis was produced in 22 rats by placing a Silver clip (inner diameter 0.6 mm) on the ascending aorta. After 12 weeks, haemodynamic and hormonal measurements were performed, and vasopressin content was determined in 20 microdissected brain areas (micropunch technique). Twenty two sham operated rats served as controls. RESULTS: Twelve weeks after placing the supravalvular clip, significant aortic stenosis was documented by left ventricular myocardial hypertrophy. Cardiac index was significantly reduced and the peripheral vascular resistance index was increased, while poststenotic aortic pressure was non-significantly decreased. Plasma renin concentration [6.8(SEM 0.9) v 2.1(0.2) ngAI.ml-1.h-1 in controls] and plasma vasopressin [32.9(12.5) v 18.4(6.0) pg.ml-1] were significantly increased, while plasma and urinary noradrenaline remained unaltered. The vasopressin content was significantly altered in eight out of 20 brain areas investigated. Concerning the vasopressin producing hypothalamic nuclei, concentrations were increased in the paraventricular [7494(360) v 4744(237) pg.mg-1 protein, P < 0.05] and suprachiasmatic [3613(170) v 1784(197) pg.mg-1 protein, P < 0.01], but not in the supraoptic nuclei. Rats with aortic stenosis showed significantly raised vasopressin concentrations in the median eminence [25 186(1682) v 37 367(1345) pg.mg-1 protein, P < 0.01], where the hormone is mainly concentrated in the hypothalamo-hypophysial tract. Vasopressin content was significantly decreased in locus coeruleus [49(5) v 89(6) pg.mg-1 protein], which is known to be involved in modulation of sympathetic activity. CONCLUSIONS: As well as showing increased secretion of vasopressin into the blood with consecutive peripheral antidiuretic and vasoconstrictive effects, these data suggest an alteration in the central vasopressin system in aortic stenosis which might transmit cardiovascular effects by neuromodulation and neuroregulation.

Animals↗

Association between a deletion polymorphism of the angiotensin-converting-enzyme gene and left ventricular hypertrophy.

BACKGROUND: Epidemiologic studies have shown that left ventricular hypertrophy is often found in the absence of an elevated cardiac workload. To investigate whether such hypertrophy is determined in part by genetic factors, we studied the association between this condition, as assessed by electrocardiographic criteria, and a deletion (D)-insertion (I) polymorphism of the angiotensin-converting-enzyme (ACE) gene. METHODS: A population-based random sample of 711 women and 717 men 45 to 59 years of age was studied cross-sectionally in Augsburg, Germany. Electrocardiographic indexes, including the Sokolow-Lyon index, Minnesota Code 3.1, and the Rautaharju equations, were used to detect left ventricular hypertrophy. The status of the ACE gene with respect to the deletion-insertion allele was determined by the polymerase chain reaction in all subjects with left ventricular hypertrophy and an identical number of control subjects without the condition who were matched for age, sex, and blood-pressure status. RESULTS: We identified 141 women and 149 men with evidence of left ventricular hypertrophy. Among these subjects, an excess were homozygous for the D allele of the ACE gene (odds ratio, 1.76; 95 percent confidence interval, 1.22 to 2.53; P = 0.003). The association of the DD genotype with left ventricular hypertrophy was stronger in men (odds ratio, 2.63; 95 percent confidence interval, 1.50 to 4.64; P < 0.001) than in women and was most prominent when blood-pressure measurements were normal (odds ratio, 4.05; 95 percent confidence interval, 1.76 to 9.28; P = 0.001). This association was evident for each of the scores recorded in the electrocardiographic testing for left ventricular hypertrophy. CONCLUSIONS: The findings suggest that left ventricular hypertrophy is partially determined by genetic disposition. They identify the DD genotype of ACE as a potential genetic marker associated with an elevated risk of left ventricular hypertrophy in middle-aged men.

Aged↗

Activation of the renin-angiotensin system in heart failure and hypertrophy--studies in human hearts and transgenic rats.

Numerous in vitro studies have demonstrated that angiotensin II has distinctive cellular effects in the cardiovascular system, independent from its effects on blood pressure. These have led to the hypothesis that activation of the angiotensin system in the heart could be of functional relevance for the adaptive processes in several cardiovascular disorders, such as cardiac hypertrophy and heart failure. This concept has been supported by clinical studies showing the beneficial effects of blockers of the system such as angiotensin converting enzyme (ACE) inhibitors in these circumstances. In order to study the regulation of gene expression of renin angiotensin system components in cardiac disorders we have performed two studies. First, we investigated the gene expression of ACE in human heart failure. Results showed that the enzyme is activated locally in this condition, supporting previous studies in animals. Second, in a different approach, we asked whether the selective activation of the renin angiotensin system in the hearts of transgenic rats expressing an additional renin gene leads to the development of pathological changes in the cardiovascular system. The results of this study demonstrated that the transgenic animals developed cardiac hypertrophy and heart failure independent of the increase in blood pressure seen in these rats. Taken together, these studies provide further evidence for the functional role of local angiotensin systems in the heart.

Animals↗

Distribution and function of cardiac angiotensin AT1- and AT2-receptor subtypes in hypertrophied rat hearts.

To determine distribution and function of cardiac angiotensin (ANG) II receptor AT1 and AT2 subtypes in left ventricular (LV) hypertrophy (LVH), ANG II (10(-8) M) was infused into isolated rat hearts with hypertrophy from aortic banding and into sham-operated controls. ANG II was infused alone or in the presence of AT1 inhibitor [losartan (10(-5) M) or CL-329167 (10(-7) M)] or AT2 inhibitor [CG-42112A (10(-8) M]. ANG II alone caused less increase in coronary vascular resistance (CVR) in LVH compared with control hearts (19 vs. 39%; P < 0.01), although baseline CVR was higher in LVH hearts. This was prevented by AT1 but not AT2 antagonists. ANG II also increased LV end-diastolic pressure in LVH hearts, signifying decreased diastolic relaxation that was prevented by AT1 but not AT2 inhibition. Characterization of ANG II binding sites in LV membrane preparations revealed similar dissociation constants between groups (1.6 +/- 0.95 vs. 2.2 +/- 2.0 nM; not significant) but lower maximum binding capacity in the LVH group (21.1 +/- 5.9 vs. 33.5 +/- 3.0 fmol/mg protein; P < 0.05). Competition assays demonstrated that control left ventricles contain predominantly the AT1 subtype (68.8 +/- 20%), whereas LVH ventricles contain primarily the putative AT2 subtype (59.8% +/- 10.8%; P < 0.05). This suggests that receptor subtype redistribution occurs in LVH with AT1 subtype down-regulation. Nonetheless, the AT1 subtype mediates the effects of ANG II on coronary tone and diastolic dysfunction in pressure-overload hypertrophy.

Angiotensin II↗

Angiotensin-converting enzyme inhibition prolongs survival and modifies the transition to heart failure in rats with pressure overload hypertrophy due to ascending aortic stenosis.

BACKGROUND: We tested the hypotheses that long-term administration of the angiotensin-converting enzyme (ACE) inhibitor fosinopril will regress hypertrophy, modify the transition to heart failure, and prolong survival in rats with chronic left ventricular (LV) pressure overload due to ascending aortic stenosis. METHODS AND RESULTS: Aortic stenosis was created in weanling male Wistar rats by a stainless steel clip placed on the ascending aorta. Age-matched control animals underwent a sham operation (Sham group, n = 57). Six weeks after surgery, rats with aortic stenosis were randomized to receive either oral fosinopril 50 mg.kg-1.d-1 (Fos/LVH group, n = 38) or no drug (LVH group, n = 36) for 15 weeks. Pilot studies confirmed that this dosage produced significant inhibition of LV tissue ACE in vivo. Animals were monitored daily, and survival during the 15-week treatment period was assessed by actuarial analysis. At 15 weeks, in vivo LV systolic and diastolic pressures and heart rate were measured. To assess contractile function, the force-calcium relation was evaluated by use of the isovolumic buffer-perfused, balloon-in-LV heart preparation at comparable coronary flow rates per gram LV weight. Quantitative morphometry was performed. Mortality during the 15-week trial was significantly less in the Fos/LVH group than in the LVH group (3% versus 31%, P < .005). No deaths occurred in the Sham group. In vivo LV systolic pressure was similar between Fos/LVH and LVH hearts (223 +/- 10 versus 232 +/- 9 mm Hg) and significantly higher than the Sham group (99 +/- 3 mm Hg, P < .05). In vivo LV diastolic pressure was significantly lower in Fos/LVH hearts than in LVH hearts (10 +/- 2 versus 15 +/- 2 mm Hg), and both were significantly higher than in the Sham group (5 +/- 1 mm Hg, P < .05). Heart rate was similar among all groups. Despite equivalent elevation of LV systolic pressure, fosinopril resulted in regression of myocyte hypertrophy in Fos/LVH versus LVH (myocyte cell width, 14.8 +/- 0.5 versus 20.8 +/- 2.2 microns, P < .05) to normal levels (Sham, 16.3 +/- 0.9 microns). Quantitative morphometry demonstrated that the regression of LV myocyte hypertrophy in the Fos/LVH group was associated with a relative increase in the fractional volume of fibrillar collagen and noncollagen interstitium. In the isolated heart experiments, LV systolic developed pressure relative to perfusate [Ca2+] was significantly higher in Fos/LVH hearts than in LVH hearts. The improvement in systolic function was not related to any difference in myocardial high-energy phosphate levels, since LV ATP and creatine phosphate levels were similar in Fos/LVH and LVH hearts. CONCLUSIONS: In rats with ascending aortic stenosis, chronic ACE inhibition with fosinopril improved survival, decreased the extent of LV hypertrophy, and improved cardiac function despite persistent elevation of LV systolic pressure. The favorable effects of fosinopril may be related in part to inhibition of the effects of cardiac ACE on myocyte hypertrophy rather than to systemic hemodynamic mechanisms.

Angiotensin-Converting Enzyme Inhibitors↗

Regulation of intrarenal and circulating renin-angiotensin systems in severe heart failure in the rat.

OBJECTIVE: Activation of the intrarenal renin-angiotensin system may contribute to the pathophysiology of heart failure by accelerating the generation of angiotensin II at local sites within the kidneys. Activation of the local intrarenal renin-angiotensin system occurs in rats and with mild heart failure. The aim of the present study was to examine components of the circulating as well as the intrarenal renin-angiotensin system in rats with severe heart failure. METHODS: Six weeks after experimental myocardial infarction (heart failure, HF; n = 8) or sham operation (control, C; n = 6), haemodynamics and the circulating and intrarenal components of the renin-angiotensin system were studied. RESULTS: HF rats were characterised by large infarctions (scar tissue > 40% of the left ventricular circumference). In comparison to sham operated controls, large myocardial infarctions resulted in severe heart failure with decreased systolic [108(SEM 3) mm Hg v 132(3) in C; p < 0.001] and diastolic arterial blood pressure [83(3) mm Hg v 95(2) in C; p < 0.05], decreased left ventricular systolic pressure [109(3) mm Hg v 132(3) in C; p < 0.005] and increased left ventricular end diastolic pressure [27(2) mm Hg v 5(1) in C; p < 0.0001]. In rats with severe heart failure, the circulating renin-angiotensin system was activated, with an increase in plasma renin activity (3.5-fold, p < 0.05) and plasma angiotensin II concentration (threefold, p < 0.01). In parallel, the intrarenal renin-angiotensin system was activated in severe heart failure. Increases occurred in renal renin mRNA level (1.7-fold, p < 0.01), renal angiotensinogen mRNA level (1.8-fold, p < 0.05), and renal angiotensin II concentration (twofold, p < 0.05) compared to C. Intrarenal angiotensin II concentrations exceeded plasma levels by a factor of 50 and were positively correlated with renal angiotensinogen mRNA levels (r = 0.874, p < 0.001), suggesting that local synthesis is the major source of angiotensin II found in the kidney. CONCLUSIONS: The intrarenal renin-angiotensin system may be selectively activated in mild heart failure, while both circulating and intrarenal renin-angiotensin systems are induced as the extent of left ventricular function worsens.

Angiotensin II↗