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V Cachofeiro

Publications and source records attributed to V Cachofeiro.

At least 37 records · Page 2Linked to original sources

Losartan reduces constrictor responses to endothelin-1 and the thromboxane A2 analogue in aortic rings from spontaneously hypertensive rats: role of nitric oxide.

OBJECTIVE: Our study was designed to investigate whether angiotensin II subtype 1 (AT1) receptors are involved in the constrictor responses evoked by endothelin-1 and the thromboxane A2 analogue U46619 in aortic rings from spontaneously hypertensive rats (SHR), by studying the effect of the AT1 receptor antagonist losartan. In addition, since nitric oxide seems to participate in the mechanism of action of losartan, we studied the effect of the nitric oxide synthesis inhibitor, NG-nitro-L-arginine methyl ester (L-NAME), on the action of losartan. MATERIALS AND METHODS: Dose-response curves of either endothelin-1 (10(-10) to 10(-7) mol/l) or U46619 (10(-10) to 10(-6) mol/l) were studied in the presence or absence of losartan (10(-5) mol/l) in aortic rings from SHR. Likewise, similar experiments were done in aortic rings pretreated with the nitric oxide synthesis inhibitor, L-NAME (10(-4) mol/l). RESULTS: Pre-incubation with losartan significantly reduced the contractile response to endothelin-1 compared with control rings, without modifying the value represented by 50% of the maximal response (pD2). The concentration-response curve to U46619 was shifted to the right in the presence of losartan, reducing the pD2 compared with control rings. The presence of captopril (10(-5) mol/l) in the incubation media did not alter the response to either endothelin-1 or U46619. The diminished response to both endothelin-1 and U46619 in the presence of losartan was reversed in L-NAME-pretreated rings. CONCLUSIONS: Angiotensin II seems to participate in the vasoconstriction induced by both endothelin-1 and the thromboxane A2 analogue through the stimulation of AT1 receptors in SHR aortic rings, because losartan inhibited this effect. Moreover, nitric oxide appears to be involved in this action of losartan.

15-Hydroxy-11 alpha,9 alpha-(epoxymethano)prosta-5↗

Contribution of nitric oxide to the acute antihypertensive effect of blockers of AT1 angiotensin receptors in spontaneously hypertensive rats.

The acute vasodepressor effect of AT1 angiotensin receptor blockers losartan and CL329167 was compared in spontaneously hypertensive rats (SHR) pretreated and not pretreated with NG-monomethyl-L-arginine (LNMMA; 15 mg/kg i.v. bolus plus infusion at 10 mg/kg/h), an inhibitor of nitric oxide (NO) synthesis. The antihypertensive effect of losartan (30 mg/kg, i.v.) in SHR pretreated with LNMMA (-13 +/- 4 mmHg) was greatly diminished (P < 0.01) relative to the antihypertensive effect of losartan in SHR not pretreated with LNMMA (-44 +/- 8 mmHg). Similarly, the antihypertensive effect of CL329167 (5 mg/kg, i.v.) in SHR pretreated with LNMMA (-12 +/- 3 mmHg) was surpassed (P < 0.01) by the antihypertensive effect in SHR not pretreated with LNMMA. (-41 +/- 4 mmHg). However, pretreatment of SHR with LNMMA did not minimize the vasodepressor effect of prazosin, isoproterenol or sodium nitroprusside. The impairment in vasodepressor responsiveness to losartan in rats pretreated with LNMMA was not demonstrable in rats concurrently receiving sodium nitroprusside to correct for the loss of endogenous NO, or atrial natriuretic peptide which also increases vascular cGMP. These data suggest that a mechanism mediated by NO and/or cGMP is necessary for the full expression of the acute antihypertensive effect of AT1 angiotensin receptor blockers in SHR.

Angiotensin Receptor Antagonists↗

Effects of antihypertensive drugs on blood pressure and metabolic alterations in the fructose-induced hypertensive rat.

Fructose feeding induces a moderate increase in blood pressure (BP) levels in normal rats, which is associated with insulin resistance, hyperinsulinemia, and hypertriglyceridemia. Increased vascular resistances in skeletal muscle have been proposed to contribute to BP elevation and insulin resistance in this animal model. To further explore the mechanisms underlying the fructose-induced hypertension in rats, the effects of quinapril and diltiazem on BP, renal function, plasma levels of glucose, insulin, and triglycerides, and insulin resistance were studied. Male Sprague-Dawley rats were fed for 4 weeks with diets containing 60% fructose or 60% starch and received quinapril or diltiazem in the drinking water. Fructose-fed rats showed higher BP and plasma levels of insulin and triglycerides when compared to controls. Treatments with quinapril or diltiazem prevented BP elevation and reduced elevated plasma insulin levels in fructose-fed rats. Plasma glucose and insulin levels were higher (P < .05) in fructose-fed rats than in controls at 15, 30, and 60 min after oral glucose load. Treatments with either quinapril or diltiazem prevented the exaggerated plasma insulin and glucose levels in response to oral glucose load in fructose-fed rats. In summary, both quinapril and diltiazem were able to prevent BP elevation levels in the fructose-fed rat, and reduced the exaggerated response to an oral glucose tolerance test in these animals.

Angiotensin-Converting Enzyme Inhibitors↗

Renal and vascular consequences of the chronic nitric oxide synthase inhibition. Effects of antihypertensive drugs.

The effects of the administration of either the angiotensin converting enzyme (ACE) inhibitor, quinapril (10 mg/kg/day, orally), or the calcium antagonist, diltiazem (100 mg/kg/day, orally), on blood pressure (BP), renal function, and vascular reactivity in isolated perfused mesenteric beds were studied in rats treated for 8 weeks with the nitric oxide (NO) synthesis inhibitor, NG-nitro-L-arginine methyl ester (LNAME, 40 mg/kg/day). The oral administration of LNAME significantly increased systolic BP values, which reached the levels of 186 +/- 7 mm Hg at week 8. Both quinapril and diltiazem reduced this, although the ACE inhibitor was more effective than the calcium antagonist. The chronic inhibition of NO resulted in an increase in water excretion whether or not the increase in systolic BP was prevented by the coadministration of either quinapril or diltiazem. At the end of the experiment, LNAME-treated rats presented higher proteinuria than control rats (140 +/- 4 mg/24 hours v 21 +/- 1 mg/24 hours, P < .05). This elevated protein excretion was normalized by both antihypertensive drugs. None of the treatments was able to modify either natriuresis or plasma creatinine levels. Endothelium-dependent relaxations to acetylcholine (10(-12) to 10(-8) mol/L) were comparable in all groups. However, the vasoconstriction induced by either the continuous infusion of phenylephrine (10(-5) mol/L) or by a bolus of angiotensin II (1 nmol) was higher in the animals that received LNAME than in control ones. The antihypertensive therapy normalized the response to phenylephrine but not to angiotensin II. These data suggest that both quinapril and diltiazem are not only able to reduce BP elevation induced by the chronic administration of LNAME in rats, but also to prevent the renal damage and the hyperresponsiveness to phenylephrine induced by this NO synthesis inhibitor.

Angiotensin-Converting Enzyme Inhibitors↗

Nitric oxide and the depressor response to angiotensin blockade in hypertension.

We investigated the contribution of nitric oxide to the short-term blood pressure reduction caused by interruption of the renin-angiotensin system in angiotensin-dependent hypertension. The blood pressure of rats made hypertensive by coarctation of the aorta between the renal arteries at their origin fell after administration of the angiotensin-converting enzyme inhibitor ramiprilat (2 mg/kg IV; -75 +/- 5 mm Hg) or the angiotensin II antagonist losartan (30 mg/kg IV; -79 +/- 6 mm Hg). But the antihypertensive effect of these agents was attenuated in rats pretreated with NG-nitro-L-arginine methyl ester (10 mg/kg IV) to inhibit nitric oxide synthesis (ramiprilat, -23 +/- 7 mm Hg; losartan, -37 +/- 5 mm Hg). In rats made hypertensive by long-term infusion of angiotensin II (60 ng/min IV, 6 to 7 days), the vasodepressor response to discontinuation of the angiotensin II infusion also was attenuated by pretreatment with the nitric oxide synthesis inhibitor (-52 +/- 7 versus -31 +/- 7 mm Hg); this attenuation was not demonstrable in rats receiving sodium nitroprusside (1 microgram.kg-1.min-1 IV) to replace the loss of endogenous nitric oxide (-72 +/- 9 mm Hg). Pretreatment with NG-nitro-L-arginine methyl ester did not interfere with the vasodepressor effect of sodium nitroprusside or prazosin in rats with aortic coarctation-induced hypertension or with the blood pressure reduction caused by discontinuation of an infusion of phenylephrine in rats made hypertensive by long-term administration of this drug. These data suggest a contribution of nitric oxide to the blood pressure reduction caused by interruption of the renin-angiotensin system in models of established angiotensin-dependent hypertension.

Angiotensin II↗

Losartan reduces phenylephrine constrictor response in aortic rings from spontaneously hypertensive rats. Role of nitric oxide and angiotensin II type 2 receptors.

Nitric oxide seems to be involved in the mechanisms underlying the antihypertensive and renal responses of losartan in spontaneously hypertensive rats (SHR). We investigated the contribution of nitric oxide to the effect of this angiotensin II (Ang II) type 1 (AT1) receptor antagonist on the constrictor response of phenylephrine in aortic rings from SHR. Furthermore, since it has been suggested that Ang II could bind to unblocked AT2 receptors, during administration of an AT1 receptor antagonist, we also studied the effect of the AT2 receptor antagonist PD 123319 on the contractile response to phenylephrine in aortic rings from SHR. To this end, we studied dose-response curves of phenylephrine (10(-9) to 10(-5) mol/L) in the presence and absence of losartan (10(-9), 10(-7), and 10(-5) mol/L) in SHR aortic rings. Preincubation with losartan reduced the constrictor response to phenylephrine but not to KCl (10 to 120 mmol/L) in a dose-dependent manner. On the other hand, the presence of captopril (10(-5) mol/L) in the incubation medium did not alter the response to phenylephrine, even at the dose of 10(-3) mol/L. The reduced response to phenylephrine in the presence of losartan was abolished in both endothelium-denuded rings and rings treated with a nitric oxide synthesis inhibitor. A similar situation was observed in PD 123319-pretreated rings, in which the effect of losartan on the contractile response to phenylephrine was reversed. Losartan was not able to stimulate the production of aortic cGMP compared with the control group. Likewise, losartan did not modify the relaxing responses to either acetylcholine or sodium nitroprusside in phenylephrine-preconstricted aortic rings. Furthermore, losartan did not alter isometric tension in aortic rings in either basal or phenylephrine-preconstricted conditions. These data demonstrate that Ang II potentiates the vasoconstriction induced by phenylephrine through the stimulation of AT1 receptors. Moreover, AT2 receptors and nitric oxide appear to be involved in this effect.

Angiotensin Receptor Antagonists↗

Aging abolishes the renal response to L-arginine infusion in essential hypertension.

A defect in the endothelium-dependent vasorelaxation could contribute to the development of arterial hypertension through the facilitation of renal vasoconstriction and sodium retention. In this study, we tested the hypothesis that aging impairs kidney function in essential hypertension through a derangement of nitric oxide-dependent renal mechanisms. To this end, we compared the renal response to an intravenous infusion of the precursor of nitric oxide synthesis, L-arginine, in young and aged essential hypertensives. In young hypertensives, L-arginine induced a significant increase in renal plasma flow, glomerular filtration rate, natriuresis and kaliuresis, without changes in filtration fraction. These effects were not observed in aged hypertensives. Neither PRA nor PA were affected by L-arginine infusion in any group. These results indicate that aging produces a derangement of endothelial function in essential hypertension.

Adult↗

Chronic effects of nitric oxide and prostaglandin inhibition on pressure diuresis and natriuresis in rats.

The long-term interaction between nitric oxide (NO) and prostaglandins (PGs) in the pressure diuresis and natriuresis response has been studied. Experiments were performed in rats with chronic (8 weeks) inhibition of NO (NG-nitro L-arginine methyl Ester, L-NAME, 40 mg/kg/day) with or without simultaneous PGs synthesis blockade (indomethacin, 1 mg/kg/day). A time control group with no treatment was studied in parallel. At the end of this period, the animals were anesthetized and renal hemodynamics and excretion were studied at three levels of renal perfusion pressure (RPP; 100, 125 and 150 mm Hg). Renal blood flow, glomerular filtration rate, diuresis and natriuresis were lower at the three RPP levels in both L-NAME-treated groups than in the control or indomethacin-treated animals. Simultaneous administration of indomethacin plus L-NAME did not further modify the hemodynamic or excretory responses observed in the L-NAME-treated animals. These results show that chronic NO inhibition impairs the renal excretory response to changes in renal perfusion pressure, and simultaneous NO and prostaglandin synthesis inhibition does not reduce those responses further. It is concluded that, on a long-term basis, a preserved NO production, but not prostaglandin production, is critical for a normal pressure diuretic and natriuretic mechanism.

Animals↗

The potential role of nitric oxide in angiotensin II-receptor blockade.

Angiotensin II (A II), the active component of the renin-angiotensin system, plays a major role in the regulation of blood pressure and renal function. A II actions are mediated by the interaction of this peptide with specific receptors that have been classified into two major types. AT1 and AT2. AT1 receptors have been associated with all of the known cardiovascular and renal effects of A II. Losartan, the first nonpeptide A II-receptor antagonist, exerts its antihypertensive action through the inhibition of A II binding to AT1 receptors. However, additional mechanisms seem to be involved in the actions of losartan in the rat. Administration of the nitric oxide (NO)-synthase inhibitor, NG-nitro-L-arginine methyl ester (LNAME), prevented the hypotensive effect induced by losartan in spontaneously hypertensive rats (SHR). Similarly, pretreatment with LNAME reduced the increases in renal plasma flow and glomerular filtration rate produced by this AT1-receptor antagonist in SHR. Furthermore, concurrent administration of the prostaglandin (PG)-synthesis inhibitor indomethacin attenuated vasodepressor, diuretic, and natriuretic effects of losartan in SHR. Finally, it should be mentioned that losartan was able to reduce the "ex vivo" vasoconstriction induced by phenylephrine in aortic rings from SHR. This effect was not observed in endothelium-denuded rings, suggesting a mediatory role of an endothelium-derived factor in this effect of losartan. Consequently, these data suggest a contributory role of NO and PGs in the vasodepressor and renal actions of AT1-receptor antagonists in SHR.

Angiotensin II↗

Nitric oxide and prostaglandins in the prolonged effects of losartan and ramipril in hypertension.

We investigated the role of endogenous nitric oxide, kinins, and prostaglandins in the vasodepressor and renal excretory effects of the angiotensin II receptor antagonist losartan and the angiotensin-converting enzyme inhibitor ramipril administered for 1 week to spontaneously hypertensive rats. To this end, either losartan (10 mg/kg per day) or ramipril (2.5 mg/kg per day) was administered in drinking water with or without simultaneous administration of (1) the nitric oxide synthesis inhibitor Ng-nitro-L-arginine methyl ester (L-NAME, 6 mg/kg per day), (2) the cyclooxygenase inhibitor indomethacin (5 mg/kg per day), (3) the bradykinin B2 receptor antagonist Hoe 140 (0.5 mg/kg per day SC), or (4) L-NAME plus indomethacin. Both losartan and ramipril significantly reduced blood pressure as measured by the tail-cuff method. L-NAME increased blood pressure when administered solely or in combination with losartan. However, L-NAME attenuated the hypotensive effect of ramipril. Indomethacin did not affect blood pressure but it reduced the antihypertensive action of losartan and ramipril. Indomethacin administration did not potentiate the increase in blood pressure induced by L-NAME. However, the concurrent administration of both inhibitors almost totally blunted the vasodepressor action of ramipril. By contrast, losartan administration in the presence of L-NAME and indomethacin increased blood pressure to a level similar to that after losartan plus L-NAME. Hoe 140 did not modify either blood pressure or the hypotensive effects of losartan or ramipril. Increases in diuresis and water intake were observed during ramipril administration. Both effects were blunted only with the concurrent administration of L-NAME and indomethacin.(ABSTRACT TRUNCATED AT 250 WORDS)

Animals↗

Effects of losartan on blood pressure, metabolic alterations, and vascular reactivity in the fructose-induced hypertensive rat.

Fructose feeding induces a moderate increase in blood pressure levels in normal rats that is associated with insulin resistance, hyperinsulinemia, and hypertriglyceridemia. The sympathetic nervous system seems to participate in the alterations of this model. To further explore the mechanisms underlying fructose-induced hypertension, the effects of the AT1 receptor antagonist losartan on blood pressure, insulin resistance, renal function, and vascular reactivity in mesenteric vascular beds were studied. Sprague-Dawley rats were fed for 4 weeks with diets containing 60% fructose or 60% starch (control), and half of each group received losartan (1 mg/kg per day) in the drinking water. Fructose-fed rats showed higher (P < .05) blood pressure levels and plasma concentrations of triglycerides and insulin than those of controls. Losartan treatment prevented both blood pressure elevation and hyperinsulinemia in fructose-fed rats but not elevation of plasma triglycerides. Plasma glucose and insulin levels in response to an oral glucose load were higher (P < .05) in fructose-fed rats than in controls. These exaggerated responses were prevented by losartan treatment. No differences in the constrictor responses of mesenteric vascular beds to KCl (60 mumol), angiotensin II (1 nmol), phenylephrine (10(-5) mol/L), or endothelin-1 (10 pmol) were found between the two groups. Relaxing responses to acetylcholine or sodium nitroprusside in phenylephrine-precontracted mesenteric vascular beds and constrictor response to the nitric oxide synthesis inhibitor NG-nitro-L-arginine methyl ester (100 nmol) were comparable in both groups. Losartan blunted angiotensin II constriction and reduced (P < .05) responses to phenylephrine in all groups.(ABSTRACT TRUNCATED AT 250 WORDS)

Analysis of Variance↗

Acute renal excretory actions of losartan in spontaneously hypertensive rats: role of AT2 receptors, prostaglandins, kinins and nitric oxide.

AIM: The effects of losartan on blood pressure and on renal function have mainly been attributed to AT1 receptor blockade. Experimental evidence suggests that these effects could also be related to the actions of angiotensin II through AT2 receptors or to vasodilatory systems. The present study was therefore designed to investigate the manner in which the acute effects of losartan on renal excretory function are affected during simultaneous administration of an AT2 receptor antagonist, a kinin B2 receptor antagonist, a cyclo-oxygenase inhibitor or a nitric oxide synthesis inhibitor. MATERIALS AND METHODS: The AT2 receptor antagonist PD 123319 (10 mg/kg), the bradykinin B2 receptor antagonist Hoe 140 (30 mu g/kg), the cyclo-oxygenase inhibitor meclofenamate (5 mg/kg) and the nitric oxide synthesis inhibitor NG-monomethyl-L-arginine (1 mu g/kg per min) were administered separately with acute intravenous losartan (1 mg/kg) to spontaneously hypertensive rats and the effects on mean arterial pressure and renal excretory function were assessed. RESULTS: Losartan reduced mean arterial pressure by 11.1 +/- 5.7 mmHg and increased the glomerular filtration rate, urine flow and sodium excretion rate. The decrease in mean arterial pressure was blocked in the presence of NG-monomethyl-L-arginine but not during concurrent administration of PD 123319, Hoe 140 or meclofenamate. The increase in glomerular filtration rate induced by losartan was blunted by Hoe 140, meclofenamate and NG-monomethyl-L-arginine. Co-administration of PD 123319, Hoe 140 or meclofenamate, but not of NG-monomethyl-L-arginine, partially blunted the diuresis and natriuresis induced by losartan. CONCLUSIONS: Nitric oxide participates in the antihypertensive action of losartan. Kinins, prostaglandins and nitric oxide appear to be involved in the effects of losartan on the glomerular filtration rate. The increases in urine flow and sodium excretion rate induced by losartan depend partially on AT2 receptors, kinins and prostaglandins.

Adrenergic beta-Antagonists↗

Role of prostaglandins in the increased vascular responsiveness to bradykinin in kidneys of spontaneously hypertensive rats.

We examined the effects of arterial injections of bradykinin on perfusion pressure and output of PGE2 and 6-keto-PGF1 alpha in isolated kidneys of spontaneously hypertensive rats (SHR) and Wistar-Kyoto rats (WKY). The kidneys were perfused with Krebs' bicarbonate buffer containing phenylephrine, both with and without indomethacin (1 microgram/mL). In kidneys perfused without indomethacin, bradykinin increased the output of PGE2 and 6-keto-PGF1 alpha in the kidneys of both WKY and SHR. Bradykinin also reduced perfusion pressure, indicative of renal vasodilation. This effect in the kidneys of SHR clearly exceeded that in the kidneys of WKY. The addition of indomethacin to the perfusion media suppressed the bradykinin-induced output of PGE2 and 6-keto-PGF1 alpha without altering the vasodilatory response to bradykinin in either SHR or WKY kidneys. Hence, the kidneys of SHR demonstrated an increased vasodilatory responsiveness to bradykinin irrespective of whether the peptide stimulated prostaglandin synthesis. We conclude that the augmented responsiveness of SHR kidneys to bradykinin-induced vasodilation cannot be attributed to enhanced expression of prostaglandin-mediated mechanisms of vasodilation.

Animals↗

Kinins, nitric oxide, and the hypotensive effect of captopril and ramiprilat in hypertension.

We investigated the role of kinins in the acute depressor effect of captopril and ramiprilat in spontaneously hypertensive rats. Since the vasodepressor action of kinins may be linked to the generation of prostaglandins and endothelium-derived relaxing factors, we also investigated the role of prostaglandins and nitric oxide in the blood pressure reduction caused by angiotensin converting enzyme inhibitors. To this end, we contrasted the hypotensive effects of captopril (10 mg/kg i.v.), ramiprilat (2 mg/kg i.v.), and the angiotensin II antagonist DuP 753 (30 mg/kg i.v.) in spontaneously hypertensive rats with and without pretreatment with a kinin antagonist (D-Arg-Arg-Pro-Hyp-Gly-Thi-Ser-D-Phe-Thi-Arg-trifluoroacetic acid) (200 micrograms/kg/min i.v.), an inhibitor of nitric oxide synthesis (NG-monomethyl-L-arginine) (15 mg/kg + 10 mg/kg/hr i.v.), or an inhibitor of prostaglandin synthesis (indomethacin) (10 mg/kg i.v.). The kinin antagonist did not affect blood pressure in spontaneously hypertensive rats but did attenuate the hypotensive effect of captopril and ramiprilat; the kinin antagonist did not minimize the depressor action of DuP 753. The nitric oxide synthesis inhibitor increased blood pressure in spontaneously hypertensive rats and attenuated the hypotensive effect of captopril, ramiprilat, and DuP 753, but it did not impede the hypotensive effect of sodium nitroprusside. Pretreatment of hypertensive rats with indomethacin did not modify the acute hypotensive effect of ramiprilat or captopril. These data suggest a contribution of endogenous kinins and nitric oxide to the acute antihypertensive effect of captopril and ramiprilat in spontaneously hypertensive rats and of nitric oxide to the hypotensive effect of DuP 753.

Angiotensin-Converting Enzyme Inhibitors↗

Increased vascular responsiveness to bradykinin in kidneys of spontaneously hypertensive rats. Effect of N omega-nitro-L-arginine.

We investigated the role of nitric oxide (NO)-dependent and NO-independent mechanisms in mediation of renal vasodilatory responses to bradykinin in spontaneously hypertensive rats (SHR), rats with angiotensin II-induced hypertension (200 ng/min i.p. for 6 days) and the corresponding normotensive control Wistar-Kyoto (WKY) rats and sham-infused rats. To this end, we contrasted the effects of arterial injections of bradykinin and other vasodilators, acetylcholine and sodium nitroprusside, on perfusion pressure and output of cyclic GMP in isolated kidneys perfused with Krebs bicarbonate buffer containing phenylephrine, both with and without N omega-nitro-L-arginine (L-NOARG) (50 microM), an inhibitor of NO synthetase. In kidneys perfused without L-NOARG, all agonists increased the output of cyclic GMP and reduced perfusion pressure, indicative of vasodilation. In kidneys perfused with L-NOARG, vasodilatory responses to bradykinin and acetylcholine were attenuated, and associated effects on output of cyclic GMP were abolished, suggesting dependency on NO synthesis. Irrespective of whether kidneys were perfused with or without L-NOARG, kidneys of SHR were more responsive than kidneys of WKY rats with regard to bradykinin-induced vasodilation. In contrast, vasodilatory responsiveness to bradykinin was nearly equal in perfused kidneys of rats with angiotensin II-induced hypertension and in normotensive controls. Also, vasodilatory responsiveness to acetylcholine and sodium nitroprusside was similar in kidneys of normotensive and hypertensive rats. These data suggest that the renal vasculature of SHR is uniquely and selectively hyperresponsive to bradykinin, with regard to both the NO-dependent and NO-independent vasodilatory actions.

Acetylcholine↗

Glomerular and vascular atrial natriuretic factor receptors in cardiomyopathic hamsters: correlation with the peptide biological effects.

STUDY OBJECTIVE: The aim was to study glomerular and vascular atrial natriuretic factor (ANF) receptors and their relationship with the post-receptor effects of the peptide in experimental heart failure. DESIGN: Binding sites ANF were studied in renal glomerular and mesenteric artery membranes. The natriuretic and relaxing effects of ANF were evaluated in the intact animal and in noradrenaline precontracted aortic strips respectively. Plasma and tissue ANF levels were also assessed. EXPERIMENTAL MATERIAL: The study was performed on cardiomyopathic (UM-X7.1) hamsters (n = 15) with a moderate degree of heart failure. Age matched Golden Syriam hamsters (n = 15) were used as controls. MEASUREMENTS AND MAIN RESULTS: Cardiomyopathic hamsters presented lower blood pressure, body weight, and plasma Na+, and higher heart weight than normal hamsters. Plasma ANF (1-98) and (99-126) levels and ventricular ANF content were higher in cardiomyopathic hamster than in controls. ANF and frusemide decreased blood pressure, and increased diuresis and natriuresis in normal hamsters. The blood pressure reduction by ANF in cardiomyopathic hamsters was approximately of the same magnitude as in normal hamsters but their renal response was blunted. The blood pressure lowering effect of frusemide was similar in both cardiomyopathic and normal hamsters, but the diuretic and natriuretic responses were greatly reduced in the former. Glomerular ANF receptor density was higher and receptor affinity was lower in cardiomyopathic hamsters than in controls. Noradrenaline precontracted vascular strips from cardiomyopathic hamster were more sensitive to the relaxant effect of ANF than those from controls. No differences in either density or affinity of vascular receptor were observed. CONCLUSIONS: The results suggest that the renal hyporesponsiveness of cardiomyopathic hamsters to ANF is not due to a down regulation of glomerular ANF receptors. The fact that the natriuretic response to frusemide is also blunted suggest the involvement of other factors.

Animals↗

In vivo heterologous regulation of rat glomerular and vascular atrial natriuretic factor receptors by angiotensin II.

Since glomerular and vascular atrial natriuretic factor (ANF) receptor density may vary inversely with circulating ANF concentration, and the latter may respond to changes in blood pressure, we investigated whether ANF receptors are modified by a pressor agent, angiotensin II. Rats were infused intraperitoneally for 6 days with either a non-pressor (200 ng/kg per min) or pressor dose (800 ng/kg per min) of angiotensin II. Blood pressure was higher and plasma renin activity lower in the pressor than in the non-pressor or sham-infused groups. Plasma ANF was elevated only in animals infused with a pressor dose of angiotensin II. Glomerular ANF receptor density was higher in the non-pressor (Bmax = 1308 +/- 360 fmol/mg protein) and lower in the pressor (Bmax = 459 +/- 13 fmol/mg protein) than in the sham-infused group (Bmax = 755 +/- 303 fmol/mg protein). In vitro, angiotensin II-precontracted isolated glomeruli from animals infused with a pressor dose of angiotensin II were less sensitive to the relaxant effect of low ANF concentrations (10(-12) and 10(-11) mol/l) than those receiving a non-pressor dose of angiotensin II or sham-infused. Vascular ANF receptor density was similar in the control and non-pressor groups (Bmax = 64 +/- 12 and 62 +/- 20 fmol/mg protein, respectively) and decreased in the pressor group (Bmax = 30 +/- 4 fmol/mg protein). Norepinephrine-precontracted aorta strips from rats receiving a non-pressor dose of angiotensin II were more sensitive to the relaxant effect of ANF.(ABSTRACT TRUNCATED AT 250 WORDS)

Angiotensin II↗

Role of renal prostaglandins in the action of ramipril (HOE-498) in normotensive rats.

Changes in blood pressure, plasma renin activity, urine volume, urinary PGE2, 6-keto-PGF1 alpha and kinins, were studied after the administration of the angiotensin converting enzyme inhibitor ramipril (100 mu/kg/day), for one week in concomitantly indomethacin (1 mg/kg/day) treated and untreated rats. Measurements were made basally, before Ramipril administration and on days 1 and 7 during the treatment. Ramipril given alone induced a decrease in urinary PGE2 (NS) and 6-keto-PGF1 alpha (p less than 0.05) on day 1, together with an increase in urinary kinins on day 7 (p less than 0.01) and in urine volume on days 1 and 7 (p less than 0.05). Increased urinary PGE2 (NS) and 6-keto-PGF1 alpha (p less than 0.05) were observed in indomethacin pretreated rats after ramipril administration. No modifications in BP levels were observed either with indomethacin or with ramipril given alone or with ramipril plus indomethacin. Ramipril increased plasma renin activity levels both in indomethacin treated and untreated rats on days 1 (p less than 0.01) and 7 (p less than 0.05). The diuretic effect of ramipril and the stimulation of kinins were blunted when concomitant indomethacin was administered. Although a stimulatory effect of ramipril on urinary PGS was only observed during indomethacin administration, the present results would suggest that a non-inhibited PGS synthesis would be required for the renal actions of Ramipril.

6-Ketoprostaglandin F1 alpha↗