The relative roles of prostaglandins and the sympathetic nervous system in mediating the hypotensive effects of hydralazine were studied in awake dogs with and without pretreatment with indomethacin, propranolol, and phentolamine. In normal dogs, mean aortic pressure decreased 23 +/- 4 mm Hg after administration of hydralazine (cumulative dose of 0.8 mg/kg). This hypotensive effect of hydralazine was potentiated by phentolamine but was abolished by propranolol. Indomethacin caused a paradoxic pressor response (11 +/- 3 mm Hg) to hydralazine, which also was abolished by addition of phentolamine. Hydralazine produced vasodilation in the coronary, skeletal muscle (quadriceps), splanchnic, and renal circulations in normal dogs. The increase in coronary blood flow was associated with increased cardiac oxygen consumption and narrowed arteriovenous oxygen difference across the heart. Propranolol reduced the increases in cardiac oxygen consumption and coronary blood flow, but only indomethacin abolished the narrowed arteriovenous oxygen difference, suggesting that the increase in coronary blood flow was related to both the increased cardiac oxygen demand and prostaglandin-mediated active coronary vasodilation. The decrease in skeletal muscle vascular resistance after hydralazine was abolished by propranolol. Skeletal muscle vascular resistance actually increased after administration of hydralazine in dogs pretreated with both propranolol and indomethacin. These effects were blocked by the addition of phentolamine. Unlike the normal response, renal and splanchnic vascular resistances increased after administration of hydralazine in dogs pretreated with indomethacin. The splanchnic vasoconstriction was abolished by phentolamine, but the renal vascular change was affected by neither phentolamine nor propranolol. The results indicate that hydralazine does not produce uniform vasodilation in all organs and that the cardiovascular actions of hydralazine involve both prostaglandins and the sympathetic nervous system.
Fifteen patients with congestive cardiomyopathy (six idiopathic and nine alcoholic) manifested by heart failure (New York Heart Association class III or IV) were randomly assigned to a protocol in which dobutamine (n = 8) or 5% dextrose in water (n = 7) was infused continuously for 72 hr. The dose of dobutamine was titrated to increase cardiac output to twice the baseline values. The patients were evaluated before infusion, shortly after infusion, and 1, 2, and 4 weeks thereafter. Functional class improved in six of eight dobutamine-treated patients but in only two of seven control patients during the 4 week observation period. Maximal exercise time and left ventricular ejection fraction increased significantly above baseline only in the dobutamine group. However, neither dobutamine nor placebo infusion produced significant changes shortly after infusion in heart rate, cardiac index, or total peripheral vascular resistance at rest or during exercise at similar workloads. The group receiving dobutamine did show a reduction in systemic systolic and pulmonary arterial mean and diastolic pressure at rest (123 +/- 5 to 108 +/- 6, 32 +/- 5, to 24 +/- 3, and 26 +/- 4 to 20 +/- 2 mm Hg, respectively). In addition, total body oxygen consumption during similar workloads was lower after dobutamine infusion than before.(ABSTRACT TRUNCATED AT 250 WORDS)
Cardiovascular actions of insulin were studied by intravenous infusions of insulin (4 and 8 mU/kg per min) in normal conscious dogs. This resulted in increases in cardiac output, heart rate, and left ventricular derivative of pressure with respect to time (dP/dt) and dP/dt/P, as blood glucose was reduced. The inotropic and chronotropic effects of insulin were not related to hypoglycemia, as they persisted even when blood glucose was restored to control values or when it was prevented from falling by a simultaneous infusion of glucose. These cardiac effects were accompanied by increases in plasma catecholamines, and were abolished by propranolol pretreatment. Both plasma epinephrine and norepinephrine increased during insulin hypoglycemia, but only norepinephrine increased during insulin infusion when euglycemia was maintained.
We infused dobutamine (20 microgram/kg per min) intravenously, once before and once after coronary artery occlusion, in 10 chronically instrumented dogs. Both infusions increased cardiac output and left ventricular dP/dt and dP/dt/P, but divergent effects on heart rate and aortic blood pressure were observed. Dobutamine decreased heart rate and increased mean aortic blood pressure before coronary artery occlusion, whereas after occlusion it increased heart rate while mean aortic blood pressure remained unchanged. A greater decrease in total peripheral vascular resistance occurred during dobutamine infusion after coronary artery occlusion than before. These differences may relate to withdrawal of enhanced sympathetic tone after coronary occlusion. Similar infusions of normal saline (n = 9) produced no systemic hemodynamic changes either before or after coronary artery occlusion. Myocardial blood flow increased to both non-ischemic and ischemic regions of the heart during dobutamine infusion, but the endocardial:epicardial blood flow ratio did not change significantly. In addition, infarct size, measured by nitroblue tetrazolium stain, was smaller in the dobutamine group (10 +/- 1 g) than in the normal saline group (15 +/- 2 g). Neither left ventricular weight nor risk zone differed between the two groups. These results indicate that dobutamine may be a useful inotropic agent during acute myocardial infarction.
The effect of verapamil, an inhibitor of transmembrane calcium flux, was studied in intact conscious dogs with myocardial ischemia produced by inflating a balloon cuff implanted on the left anterior descending coronary artery. Six dogs received a continuous infusion of verapamil (10 microgram/kg per min) beginning prior to coronary occlusion, and six received normal saline infusions. Systolic ejection shortening (SES) was measured from subendocardial ultrasonic crystals implanted in the central ischemic zone (IZ) and border zone (BZ), and in a nonischemic control zone (CZ). Hearts were paced at a constant heart rate with periodic introduction of closely coupled extrasystoles. SES was measured both for normally paced beats and during postextrasystolic potentiation (PESP). Regional myocardial blood flow was measured by injecting radioactive microspheres before, during, and after coronary occlusion. There were no significant differences between verapamil-treated dogs and saline control dogs in mean aortic pressure, heart rate, left ventricular end-diastolic pressure or dP/dt, cardiac output, or regional myocardial blood flow in IZ, BZ, or CZ. Differences in mechanical performance between two groups were noted, however. In the IZ, SES was abolished completely for normally paced beats in both groups but was significantly preserved for PESP beats in the verapamil-treated animals. In the BZ, SES was significantly reduced for normally paced beats only in the saline controls, and PESP responses were preserved to a significantly greater degree in the verapamil-treated animals. These results indicate that verapamil pretreatment exerts beneficial effects upon mechanical performance of ischemic myocardium. Since no changes in systemic hemodynamics or regional myocardial blood flow were observed, the effect may be due to the calcium-antagonistic properties of the agent.
We studied the conditioning effects of chronic infusion of dobutamine and exercise training in three groups of chronically instrumented dogs. One group was infused with normal saline, a second group was infused with dobutamine (40 mug/kg per min), and the third group was exercised on a treadmill at 4 mph, up a 10 degrees incline. Each group was either infused or exercised for 2 h a day, 5 d a week for 5 consecutive wk. Resting heart rate and arterial blood lactate concentration, measured at weekly intervals, decreased progressively in the dobutamine and exercise groups, but not in the group that received normal saline infusion. Cardiovascular responses to submaximal treadmill exercise were not changed by 5 wk of normal saline infusion. However, the increases in heart rate, cardiac output, mean aortic blood pressure, arterial blood lactate, plasma renin activity, and norepinephrine concentration during exercise were significantly smaller after 5 wk of conditioning with either dobutamine or exercise training. After conditioning, the increases in arteriovenous oxygen difference during exercise were larger in the latter two groups, but the increases in total body oxygen consumption did not differ before and after conditioning. To assess ventricular function, we intravenously infused methoxamine both before and after conditioning. The slope of the line that related systolic aortic blood pressure and mean left atrial pressure increased in the animals conditioned with either dobutamine or exercise, indicating enhanced myocardial contractility. Left ventricular blood flow was lower in these two groups of animals than it was in the normal saline group. Left ventricular weight did not differ among the three groups. Our results show that chronic infusion of dobutamine produced cardiovascular and metabolic conditioning effects like those produced by exercise training, and further suggest that sympathetic stimulation during exercise plays a role in physical conditioning.
The role of the renin-angiotensin system in mediating the circulatory and metabolic responses to hypoxia was studied in three groups of conscious dogs that were infused continuously with normal saline, teprotide (10 mug/kg per min), and saralasin (1 mug/kg per min), respectively. Hypoxia was produced by switching from breathing room air to 5 or 8% oxygen-nitrogen mixture. Plasma renin activity increased from 2.3+/-0.4 to 4.9+/-0.8 ng/ml per h during 8% oxygen breathing, and from 2.8+/-0.4 to 8.4+/-1.8 ng/ml per h during 5% oxygen breathing. As expected, cardiac output, heart rate, mean aortic blood pressure, and left ventricular dP/dt and dP/dt/P increased during both 5 and 8% oxygen breathing in the saline-treated dogs; greater increases occurred during the more severe hypoxia. Teprotide and saralasin infusion diminished the hemodynamic responses to 5% oxygen breathing, but did not affect the responses to 8% oxygen breathing significantly. In addition, the increased blood flows to the myocardium, kidneys, adrenals, brain, intercostal muscle, and diaphragm that usually occur during 5% oxygen breathing were reduced by both agents. These agents also reduced the increases in plasma norepinephrine concentration during 5% oxygen breathing, but had no effects on tissue aerobic or anaerobic metabolism. In dogs pretreated with propranolol and phentolamine, administration of teprotide (0.5 mg/kg) during 5% oxygen breathing reduced mean aortic blood pressure and total peripheral vascular resistance, and increased cardiac output and heart rate, but did not affect left ventricular dP/dt, dP/dt/P, and end-diastolic pressure. Simultaneously, renal and myocardial blood flows increased and myocardial oxygen extraction decreased, while myocardial oxygen consumption did not change significantly. These results suggest that the renin-angiotensin system plays an important role in the hemodynamic responses to severe hypoxia. It appears that angiotensin not only exerts a direct vasoconstrictor action, especially upon the coronary and renal circulations, but also potentiates the cardiovascular effects of sympathetic stimulation that occur during severe hypoxia.
The role of the renin-angiotensin system in the regulation of the systemic and coronary circulations during sodium depletion was studied in conscious normotensive dogs by i.v. administration of teprotide (0.5 mg/kg), an angiotensin-converting enzyme inhibitor, and saralasin (0.05-5 mug/kg per min), an angiotensin-receptor antagonist. Sodium depletion was produced by administering a low sodium diet and furosemide for 5 days. Administration of both teprotide and saralasin lowered systemic arterial blood pressure and total peripheral vascular resistance. Simultaneously, cardiac output increased, but left ventricular end-diastolic pressure, dP/dt, and dP/dt/P did not change significantly. Furthermore, both agents reduced diastolic coronary vascular resistance and increased coronary blood flow, but did not affect myocardial oxygen consumption, left ventricular work, or myocardial efficiency. These systemic and coronary vasodilator effects of teprotide and saralasin, however, were not observed in normal dogs on a regular sodium diet; in this group, the only effect noted was a slight increase in arterial pressure during saralasin infusion. Arterial plasma concentration of norepinephrine did not differ between normal and sodiumdepleted dogs, nor did it change significantly after teprotide administration. These results suggest that, during salt depletion, angiotensin II exerts an active vasoconstrictor action on the systemic and coronary vessels, but has no significant effects on myocardial contractility or energetics. It also appears likely that the increase in cardiac output observed in sodiumdepleted dogs after angiotensin inhibition was caused, at least in part, by the decrease in systemic arterial pressure.