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The influence of dihydroergotamine on adenosine-induced and reactive coronary vasodilation. Interaction of dihydroergotamine and coronary vasodilation.

The influence of dihydroergotamine on adenosine-induced and reactive vasodilation after long and short periods of coronary artery occlusion was investigated in thoracotomized dogs. Adenosine-induced vasodilation (intracoronary administration) and vasodilation after long periods of coronary artery occlusion (25-35 beats) were similarly influenced, i.e. decreased by the i.v. administration of 10 mug/kg dihydroergotamine. By contrast vasodilation after short periods of coronary artery occlusion (4-7 beats) tended to be increased. This difference in response is thought to arise from two distinct mechanisms of coronary vasodilation after coronary artery occlusion depending on the duration of the occlusion period. The vasodilation after short periods of coronary artery occlusion possibly corresponds to physiological autoregulation. With longer periods of coronary artery occlusion an additional, consecutive mechanism is called into action.

Adenosine

Effects of chronic administration of antihypertensive drugs on vasodilation mediated by calcitonin gene-related peptide-containing vasodilator nerves in spontaneously hypertensive rats.

1. The effects of chronic administration of antihypertensive drugs on the vasodilator response mediated by calcitonin gene-related peptide (CGRP)-containing nerves were investigated in spontaneously hypertensive rats (SHR). 2. A 7 week period of antihypertensive treatment with captopril, nicardipine or propranolol during the developmental phase (8-15 weeks of age) significantly lowered the mean blood pressure of SHR when compared with non-treated SHR. 3. The mesenteric vascular beds isolated from SHR, which were chronically administered with captopril, propranolol or nicardipine, were perfused with Krebs' solution containing 7 mumol/L methoxamine to produce active tone and 5 mumol/L guanethidine to block adrenergic neurotransmission. 4. In the mesenteric vascular bed with active tone, perivascular nerve stimulation (PNS; 0.5-8 Hz) caused a frequency-dependent vasodilator response that was abolished by 100 nmol/L tetrodotoxin (neurotoxin) or 1 mumol/L CGRP (8-37), a CGRP receptor antagonist. 5. CGRP-containing nerve-mediated vasodilator responses were significantly greater in captopril-treated SHR and significantly smaller in nicardipine-treated SHR than in non-treated SHR. There was no difference between the response between propranolol-treated SHR and non-treated SHR. 6. These results suggest that chronic treatment with captopril reverses the reduced neurogenic vasodilation mediated by CGRP-containing nerves in SHR.

Animals

Effects of coronary vasodilator on cyclic nucleotides. The concentrations of cyclic AMP and cyclic GMP in canine coronary artery and left ventricular muscle following the administration of various coronary vasodilators.

We examined the effects of various coronary vasodilator drugs, papaverine, dipyridamole, isosorbide dinitrate, amyl nitrite, nitroglycerin, diltiazem, and nifedipine, on cyclic nucleotides of the coronary artery and left ventricular muscle of anesthetized dogs at maximum coronary blood flow after the administration of each agents. Only papaverine and dipyridamole significantly increased the concentration of c-AMP in the coronary artery. Nitroglycerin and siosorbide dinitrate did not significantly change the concentration of c-AMP but rather increased the concentration of c-GMP. Coronary vasodilator drugs were divided into three groups in association with the relationship of cyclic nucleotides in the coronary artery. Group I, including papaverine, dipyridamole, and amyl nitrite, increased the concentration of c-AMP and the ratio of c-AMP to c-GMP. Group II, including nitroglycerin and isosorbide dinitrate, incrased the concentration of c-GMP and decreased the ratio of c-AMP to c-GMP. Group III, including nifedipine and diltiazem, had no effect on the cyclic nucleotides. Group I drugs also increased the concentration of c-AMP in the left ventricular muscle and so group I drugs may predispose the ischemic heart to develop ventricular arrhythmias. It seems that the most useful coronary vasodilator is no effect on the c-AMP in the ventricular muscle and group II and group III drugs are more useful coronary vasodilator drugs than group I drugs.

Amyl Nitrite

[The treatment of congestive heart failure by using vasodilators. I. Physiological basis. Different vasodilators (author's transl)].

The use of vasodilators represents a new approach in the treatment of heart failure. These drugs have the property of causing vasodilatation of either arterial or venous predominance or balanced between these two vascular beds. Arterio-dilators (phentolamine, hydralazine) increase stroke volume and cardiac output by decreasing ventricular afterload. Veno-dilators (nitroglycerine) have little effect on cardiac output but decrease ventricular filling pressure, thereby relieving pulmonary venous hypertension. Mixed vasodilators (Sodium nitroprussideate, trimetaphan) combine these two groups of properties in various degrees. The majority of these drugs can only be administered intravenously, with careful haemodynamic surveillance.

Cardiac Output

Endothelium-dependent vasodilation by LP-805, a novel vasodilating agent, on rat thoracic aorta.

1. In rat aortae with [E(+)-tissue] and without [E(-)-tissue] intact endothelium, LP-805 relaxed the preparations precontracted with 35.9 mM K+ and its action in E(+)-tissues was more potent than that in E(-)-tissues. Moreover, the inhibitory action of glibenclamide in E(-)-tissues was more potent than that in E(+)-tissues. 2. The relaxing action of LP-805 on E(+)-tissues treated with NG-nitro-L-arginine methyl ester (10 microM), a potent inhibitor of nitric oxide synthesis, was the same as that in E(-)-tissues. 3. Methylene blue (10 microM) also inhibited the LP-805 induced relaxation in E(+)-tissues. 4. Indomethacin (10 microM) had no effect on LP-805-induced relaxation in E(+)-tissues. 5. These results suggest that the vasorelaxant action of LP-805 involves the mechanism which causes the release of nitric oxide (NO) from vascular endothelium.

Animals

[Comparative study of acoustic trauma caused by blasts, treated by vasodilators or by a combination of vasodilators and hyperbaric oxygenation].

The authors had comparated two series of patients with noise induced hearing loss treated by vasodilatators or vasodilatators and hyperbaric oxygen. This therapy seems to give better results than the vasodilatators only, but the patients had to be treated before ten days after the noise exposition. In the two series of acoustic trauma we see rarely a complete recovery from the hearing loss.

Adult

Nitric oxide and sensory nerves are involved in the vasodilator response to acetylcholine but not calcitonin gene-related peptide in rat skin microvasculature.

1. The contributions of sensory nerves and nitric oxide (NO) to vasodilator responses to acetylcholine (ACh) and calcitonin gene-related peptide (CGRP) were examined in rat skin microvasculature with a laser Doppler flowmeter to monitor relative blood flow. 2. Perfusion of ACh (100 microM; for 30 min) over a blister base on the rat hind footpad elicited microvascular vasodilatation and this response was not sustained. CGRP (1 microM; 10 min perfusion) also elicited vasodilatation and this response was maintained even when CGRP was no longer in contact with the blister base. 3. The vasodilator response to ACh was significantly smaller in rats pretreated as neonates with capsaicin to destroy primary sensory afferents than it was in age-matched controls. The vasodilator response to CGRP was unaffected by capsaicin pretreatment. 4. Selective inhibitors of NO synthase, NG-nitro-L-arginine (L-NOARG) and NG-monomethyl-L-arginine (L-NMMA) (both at 100 microM) attenuated the vasodilator response to ACh in control rats, but had no effect on the vasodilator response to CGRP. There was a significant L-NOARG-resistant component in control rats while in capsaicin-treated rats the vasodilator response to ACh was virtually abolished by L-NOARG. The inactive stereoisomer NG-monomethyl-D-arginine (100 microM) did not affect the vasodilator response to ACh. 5. The efficacy of L-NOARG and L-NMMA as inhibitors of endothelium-dependent responses was confirmed by use of an endothelium-dependent vasodilator, the calcium ionophore A23187 (100 microM; 10 min perfusion). Vasodilatation to A23187 was strongly attenuated by both L-NOARG and L-NMMA.6. These results suggest that sensory nerves and NO are both involved in the dilatation produced by ACh in rat skin microvasculature. A component of the vasodilator response elicited by ACh involves a direct action on the microvascular endothelium with subsequent generation of NO, while an additional component is elicited via activation of sensory nerves. The vasodilator mediator(s) released by ACh from sensory nerves acts largely independently of NO.7. The vasodilator response to CGRP is independent of a prejunctional action on sensory nerves and of NO.

Acetylcholine

Neurons intrinsic to arterioles initiate postcontraction vasodilation.

UNLABELLED: Ganglion cells exist in muscle arterioles. To determine the role of these intrinsic neurons in postcontraction vasodilation, isolated dog gracilis muscles were studied. A single twitch elicited vasodilation, but no vasodilator metabolites appeared in the venous effluent. Contraction at 2/s lowered resistance within 1 s whereas dilator metabolites were not demonstrable in the effluent until 15-20 s. During contraction the magnitude and time course of vasodilation were the same during constant and variable flow, and at various values of PaO2 and PVO2. In contrast, resistance was strongly correlated with flow and PO2 during recovery. Some resting muscles were perfused with venous blood from contracting donors. The rate of metabolic vasodilation in recipient muscles was about 10 times less than the rate of vasodilation in the donors. Lidocaine and procaine blocked postcontraction vasodilation but did not influence postocclusion vasodilation, metabolic vasodialtion, or autoregulation. The degree of block was the same in acutely and chronically denervated muscles. The effect of local anesthetics could not be accounted for by properties of skeletal or vascular smooth muscles. CONCLUSIONS: 1) intrinsic neurons initiate postcontraction vasodilation; 2) metabolites account for sustained vasodilation during recovery.

Animals

Contribution of K+ channels to arachidonic acid-induced endothelium-dependent vasodilation in rat isolated perfused mesenteric arteries.

The contribution of K+ channels and cytochrome P450 generated arachidonic acid (AA) metabolites to the endothelium-dependent vasodilation produced by this fatty acid in the perfused rat isolated mesenteric arteries was examined using a variety of compounds known to inhibit transmembrane K+ channels and cytochrome P450 enzymes. AA (1-1000 nmol) caused dose- and endothelium-dependent vasodilation in the presence of indomethacin and the effect was neither altered by lipoxygenase (AA 861) nor cytochrome P450 monooxygenase (alpha-naphthoflavone, ketoconazole and metyrapone) inhibitors indicating that AA-induced, endothelium-dependent vasodilation in this vascular bed was not mediated by product(s) of AA metabolism. The vasodilator effect of AA was also not altered by L-NG-nitro-arginine, methylene blue (50 microM), oxyhemoglobin (5 microM) or superoxide dismutase (50 U/ml), thus ruling out nitric oxide being its mediator. Conversely, arterial perfusion with K(+)-free or excess (50 mM) K+ Krebs' solution, but not ouabain infusion, minimized the vasodilator effect of AA, suggesting that this action of the fatty acid is due to changes in membrane K+ conductance that is independent of Na+/K(+)-adenosine triphosphatase activity. The vasodilator action of BRL 34915 (a K+ channel activator) was also minimized by extracellular K+ depletion or excess K+ (50 mM), but not by ouabain. Apamin (0.5 microM) and crude scorpion venom (2.5 micrograms/ml) attenuated AA- but not BRL 34915-induced vasodilation. Glyburide (inhibitor of ATP-activated K+ channel) abolished the vasodilator action of AA and BRL 34915. Procaine, a nonspecific K+ channel blocker did not affect AA-induced vasodilation even though it attenuated that caused by BRL 34915.(ABSTRACT TRUNCATED AT 250 WORDS)

Animals

Impaired endothelium-mediated vasodilation in the peripheral vasculature of patients with congestive heart failure.

Impaired endothelial-dependent vasodilation has been demonstrated in two animal models of congestive heart failure and in the coronary circulation of patients with idiopathic dilated cardiomyopathy. To determine whether this impairment contributes to the abnormal peripheral vasomotor tone in patients with congestive heart failure, the local vascular response to intraarterial infusions of graded concentrations (10(-8) M to 10(-5) M) of acetylcholine (an endothelial-dependent vasodilator) and nitroglycerin (a direct-acting vasodilator) was studied in the superficial femoral artery of 19 patients with congestive heart failure (New York Heart Association classes I to IV) and 6 age-matched normal control subjects. The local vascular response was determined from the arterial blood flow velocity pattern obtained by transcutaneous Doppler ultrasonography. Acetylcholine, 10(-5) M, induced a pattern characteristic of vasodilation in all six normal subjects; mean blood flow velocity for the group significantly increased from 11.9 +/- 2.7 to 44.8 +/- 20.9 cm/s (p less than 0.05). In contrast, the same dose of acetylcholine induced a blood flow velocity pattern characteristic of vasodilation in only 4 of the 19 patients with congestive heart failure. Group mean blood flow velocity did not change significantly. Nitroglycerin, 10(-7) M, induced vasodilation in all 6 normal subjects but in only 1 of 19 patients. Nitroglycerin, 10(-5) M, was administered to 10 patients; all 10 demonstrated a pattern characteristic of vasodilation. Thus, acetylcholine-mediated endothelial-dependent vasodilation appears to be impaired in the peripheral vasculature of patients with congestive heart failure. Both endothelial dysfunction and abnormal vascular smooth muscle responsiveness may contribute to abnormal peripheral vasomotor tone.

Acetylcholine

Endothelium-dependent and -independent vasodilation and reactive hyperemia in healthy smokers.

Although cigarette smoking elicits a transient increase in peripheral vascular resistance in humans, the basal blood pressure (BP) is usually slightly lower in smokers. We hypothesized that this may be due to a compensatory increase in sensitivity in smokers to endogenous vasodilators. To test this, we studied endothelium-dependent and -independent vasodilator responses, and reactive hyperemia (RH) in the forearm of 25 healthy subjects [11 smokers (S) and 14 nonsmokers (NS)]. Endothelium-dependent vasodilation was induced by infusion into a brachial artery of stepwise increasing dosages of acetylcholine (ACh, 10-60 micrograms/kg/min) and endothelium-independent vasodilation by a similar infusion of nitroprusside (N, 1-6 micrograms/kg/min). RH was induced by release of a 5-min upper arm arterial occlusion. Forearm blood flow (FBF) was recorded by plethysmography. Endothelium-dependent vasodilation was more pronounced in S than in NS (p < 0.01), the maximal FBF during infusion of ACh being 20 +/- 6 and 14 +/- 4 ml/100 ml/min, respectively. Endothelium-independent vasodilation was also larger in S than in NS (p < 0.001), the maximal FBF during infusion of N being 14 +/- 3 and 12 +/- 2 ml/100 ml/min, respectively. ACh-induced vasodilator responses in S and NS were completely blocked by atropine. They were not decreased by trimethaphan, a nicotinic receptor inhibitor. RH was slightly more pronounced in S than in NS (p < 0.02), the postocclusive FBF 15 s after release of the occlusion being 25 +/- 4 and 21 +/- 3 ml/100 ml/min, respectively We propose that cigarette smoking increases the sensitivity of the vascular smooth muscle to vasodilator stimuli.

Acetylcholine

Endotoxin impairs flow-induced vasodilation of porcine coronary arterioles.

The purpose of this study was to test the hypothesis that endotoxemia impairs endothelium-dependent (both receptor-mediated and flow-induced) vasodilation in porcine coronary arterioles. Coronary arterioles were isolated from three groups of 4- to 8-wk old (10.3 +/- 0.8 kg) pigs: endotoxemic (E; 250 micrograms/kg endotoxin iv), control (C; equal volume of saline), and untreated pigs (UT). Subepicardial arterioles (60-120 microns) were isolated and cannulated with two micropipettes that were connected to two independent reservoir systems. Intraluminal pressure was set at 60 cmH2O throughout the experiments. All C vessels developed spontaneous tone and exhibited flow-induced vasodilation from 65 to 95% maximal diameter. Spontaneous tone developed in only three of five arterioles from E pigs, and flow-induced vasodilation was not observed in any arteriole from E pigs. Spontaneous tone developed in all six arterioles isolated from UT pigs but disappeared in four of these vessels as a result of 1 h of in vitro incubation with endotoxin (2.5 micrograms/ml). Flow-induced vasodilation was also abolished in these vessels after 1 h of endotoxin exposure. Incubation with 3 mM L-arginine, in vitro, restored flow-induced vasodilation in E arterioles and endotoxin-treated UT arterioles. Vasoconstriction induced by acetylcholine (ACh) and vasodilation induced by nitroprusside (NP) and bradykinin (BK) were similar in arterioles from all groups. In contrast, endotoxin impairs flow-induced vasodilation of coronary arterioles. The mechanism responsible for the impairment of flow-induced vasodilation seems to reside in disruption of the L-arginine/nitric oxide pathway.

Acetylcholine

Captopril improves impaired endothelium-dependent vasodilation in hypertensive patients.

Animal studies suggest that some angiotensin converting enzyme inhibitors augment endothelium-dependent vasorelaxation. We aimed to determine if captopril augments endothelium-dependent vasodilation in middle-aged hypertensive patients. By using strain-gauge plethysmography, forearm vasodilation evoked with intra-arterial acetylcholine (4, 8, 16, and 24 micrograms/min) or nitroprusside (0.2, 0.4, 0.8, and 1.2 micrograms/min) was examined before and after captopril administration (25 mg per os). Before captopril, forearm vasodilation with acetylcholine was less in hypertensive patients (n = 12) than in age-matched (n = 7) or young (n = 7) normotensive subjects, but forearm vasodilation with nitroprusside did not differ among the three groups. Captopril improved forearm vasodilation in hypertensive patients (n = 7) with acetylcholine but nitroprusside did not. In contrast, nifedipine (10 mg per os) did not alter forearm vasodilation with acetylcholine or nitroprusside in hypertensive patients (n = 5). The decreases in mean blood pressure caused by captopril and nifedipine in hypertensive subjects were comparable. Captopril did not alter forearm vasodilation with acetylcholine or nitroprusside in young normotensive subjects (n = 7). These results suggest that captopril in hypertensive patients may acutely improve impaired endothelium-dependent forearm vasodilation that does not result from reduction in blood pressure per se.

Acetylcholine

Influence of histamine H1- and H2-receptor blockers on sympathetic vasodilator and vasoconstrictor responses in canine paw.

1 Vasodilator responses to histamine, bradykinin and sympathetic nerve stimulation were elicited in the perfused paw of dogs treated with bretylium (15-20 mg/kg) and atropine. The H2-receptor blocking agent, burimamide, when administered in the dose of 5 mg/kg intravenously and 4 mg intra-arterially did not depress significantly these vasodilator responses. The subsequent administration of tripelennamine in the dose of 2.5-5 mg/kg intravenously and 4 mg intra-arterially produced a significant blockade of the response to histamine and reduced the sustained vasodilator response to nerve stimulation. 2 In guanethidine-treated dogs, tripelennamine administered in the same dose following burimamide produced a blockade of the response to histamine comparable to that in the bretylium experiments, but decreased only the sustained vasodilator response to stimulation at 1 Hz. When the order of administration of the antihistamines was reversed in another group of guanethidine-treated dogs, tripelennamine had only a slight blocking effect on the response to histamine and did not affect the responses to nerve stimulation. Burimamide exerted a significant blocking effect on the response to histamine, but not to nerve stimulation. Another H2-receptor blocking agent, metiamide, when given after tripelennamine, also had a marked blocking effect on the response to histamine and almost abolished the vasodilator response to 4-methylhistamine, an H2-agonist. Nevertheless, even in the presence of this profound histamine blockade, the sustained vasodilator response to nerve stimulation remained unchanged. 3 In another group of experiments vasoconstrictor responses to exogenous noradrenaline and sympathetic stimulation were initially depressed by burimamide and later returned to control values. Tripelennamine increased these responses by its uptake blocking action. 4 It is concluded that the sustained vasodilator response is not antagonized by a specific antihistaminic action. The decrease in the sustained vasodilator response produced by antihistamines is produced attributable to potentiation of a residual adrenergic vasoconstricotr effect not completely blocked by bretylium.

Animals

The role of nitric oxide in the regional vasodilator effects of endothelin-1 in the rat.

1. The role of nitic oxide (NO) derived from L-arginine in the regional vasodilator effects of endothelin-1 has been investigated in anaesthetized, spontaneously hypertensive (SH) rats in which autonomic reflexes were abolished by ganglion blockade. The experimental design incorporated animals infused with phenylephrine to mimic the peripheral vasconstrictor effects of the NO biosynthesis inhibitors and a single dose per animal paradigm to obviate problems of tachyphylaxis to the vasodilator effects of endothelin-1. 2. Infusion of the inhibitor of NO synthase, N-monomethyl-L-arginine (L-NMMA) at a dose (5 mg kg-1 min-1) which maximally raised blood pressure did not influence either the fall in blood pressure or the vasodilator responses induced in the hindquarters and carotid vascular beds by endothelin-1 (1 nmol kg-1, i.v.) The duration (but not the initial magnitude) of the vasodepressor response to endothelin-1 was however significantly attenuated (by 49%) during infusion of the more potent inhibitor of NO synthase, NG-nitro-L-arginine methyl ester (L-NAME), 2 mg kg-1 min-1. 3. Increasing the dose of L-NAME to 10 and 25 mg kg-1min-1 significantly attenuated, but did not abolish, the falls in blood pressure and hindquarters vasodilator responses to acetylcholine, 1 microgram kg-1, and endothelin-1, 1 nmol kg-1 min-1. The effects were selective in that vasodepressor responses to the endothelium-independent vasodilator, sodium nitroprusside, 1-10 micrograms kg-1 min-1, were unaltered. The effects were selective in that vasodepressor responses to the endothelium-independent vasodilator, sodium nitroprusside, 1-l0mg kg min , were unaltered.4. The data indicate that NO generated de novo from L-arginine mediates a significant component of the vasodilator effect of endothelin-1 in the anaesthetized, ganglion-blocked SH rat. However, a major component of the vasodepressor effects of both endothelin-1 and acetylcholine may occur independently of this mechanism.

Animals