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Biomedical subjects

R G Merin

Publications and source records attributed to R G Merin.

At least 55 records · Page 3Linked to original sources

Cardiovascular effects of and interaction between calcium blocking drugs and anesthetics in chronically instrumented dogs. II. Verapamil, enflurane, and isoflurane.

The effects of enflurane and isoflurane on the cardiovascular system and cellular calcium kinetics are somewhat different. Consequently, the interaction with the calcium channel blocking drug, verapamil, may also differ. In order to compare the anesthetics, the authors studied the effects of two infusion doses of verapamil (which produced plasma levels of 90 and 180 ng X ml-1) on cardiovascular dynamics and regional blood flow in awake dogs. On two other days, in the same dogs, the effects of approximately 1.1 and 2 MAC enflurane and isoflurane were first studied and then the same verapamil dose regimens while the same anesthetic concentrations were maintained. Verapamil produced only increases in heart rate and the P-R interval in the awake animal. The high dose of both anesthetics markedly decreased mean aortic pressure and left ventricular rate of tension development (dP/dt), and increased heart rate. However, only enflurane also decreased myocardial segment length shortening and increased left atrial pressure. Neither anesthetic alone affected coronary or renal blood flow, while both increased carotid blood flow at the low dose. Verapamil infusion during 1.2 MAC enflurane was more depressant than during 1.2 MAC isoflurane, but the combination of verapamil with 2 MAC concentration of both anesthetics was equally depressant. Both doses of both anesthetics increased plasma verapamil levels compared with the same verapamil dosing regimen awake. When these results are compared with those previously reported for halothane, the effects of verapamil during all three anesthetics are more similar than different.(ABSTRACT TRUNCATED AT 250 WORDS)

Anesthesia, Endotracheal

Cardiovascular effects of and interaction between calcium blocking drugs and anesthetics in chronically instrumented dogs. III. Nicardipine and isoflurane.

To assess the interaction between isoflurane and the new calcium channel blocker, nicardipine, mongrel dogs were chronically instrumented to allow the following measurements: aortic, left ventricular and left atrial pressures; heart rate; cardiac output; and carotid, coronary, and renal blood flows. The hemodynamic effects of intravenous nicardipine 5, 10, 30, and 50 micrograms/kg were measured in awake dogs and during 1.6 and 3.0 per cent (end-tidal) isoflurane anesthesia. Nicardipine induced a dose-dependent fall in mean arterial pressure in both awake dogs and during 1.6 and 3.0 per cent isoflurane anesthesia. Heart rate and cardiac output were increased in proportion to the nicardipine dose in the awake dogs and, to a lesser degree, in the dogs anesthetized with 1.6 per cent isoflurane, but did not change during 3.0 per cent isoflurane anesthesia. Left atrial pressure was unchanged by nicardipine in awake dogs and during anesthesia. Left ventricular maximum rate of tension development (dP/dt) increased in awake dogs and decreased during anesthesia. Coronary blood flow increased dose dependently without anesthesia, and, to a smaller degree, during anesthesia. Nicardipine increased carotid blood flow without anesthesia, whereas it was unchanged during anesthesia. Renal blood flow was unchanged in awake dogs and decreased during anesthesia. The authors conclude that nicardipine is a potent vasodilator that minimally affects cardiac function and regional blood flow in the presence of isoflurane. The interactions between nicardipine and isoflurane are mainly the result of the isoflurane-induced inhibition of the reflex tachycardia elicited by nicardipine.

Animals

Effects of inhalational anesthetics on verapamil pharmacokinetics in dogs.

Six dogs were chronically instrumented in order to collect aortic blood samples and record mean arterial pressure, cardiac output and heart rate. Each animal received verapamil 200 micrograms X kg-1 by 10-min intravenous infusions on four occasions in random sequence: awake, and during halothane 1.2%, enflurane 2.5%, and isoflurane 1.6% anesthesia. Rate of initial distribution of verapamil was reduced during anesthetic exposure. Verapamil intercompartmental clearance from the central compartment to the peripheral compartment was decreased during exposure to halothane and isoflurane, and tended to decrease during enflurane exposure as well. Verapamil terminal volume of distribution at steady-state was reduced by halothane, enflurane, and isoflurane exposure as compared with awake: 65 +/- 10, 80 +/- 9, and 93 +/- 191, respectively, versus 132 +/- 121 (mean +/- SEM; P less than 0.05). Verapamil total clearance was also reduced by halothane, enflurane, and isoflurane as compared with awake: 37 +/- 4, 39 +/- 2 and 41 +/- 31 X h-1, respectively, versus 64 +/- 71 X h-1 (P less than 0.05). Verapamil administered to awake animals resulted in a decrease from baseline in mean arterial pressure; 95 +/- 8 mmHg versus 108 +/- 4 mmHg (P less than 0.05): and an increase in cardiac output; 2.60 +/- 0.33 1 X min-1 versus 1.93 +/- 0.22 1 X min-1 (P less than 0.05). During halothane, enflurane, and isoflurane anesthesia, verapamil administration resulted in a similar decrease in mean arterial pressure; however cardiac output decreased, in contrast to the increase noted in awake animals.(ABSTRACT TRUNCATED AT 250 WORDS)

Anesthesia, Inhalation

Left ventricular function and compliance in swine during halothane anesthesia.

Halothane (0.05--1.7 vol per cent end-tidal) in nitrous oxide (N2O), 60 per cent: oxygen (O2), 40 per cent was administered to nonmedicated, closed-chest pigs. Ventricular function was analyzed from cardiac output (thermodilution) and left ventricular (LV) pressure indices. Ventricular volumes and compliance were estimated from single and biplane LV angiography. In separate experiments, the effects of N2O, time, and the angiographic dye injections were shown to be minimal. Halothane caused dose-dependent decreases in aortic blood pressure, cardiac output, peak first derivative of left ventricular pressure (LV dP/dt), the in-vivo maximum velocity of fiber shortening (Vmax), and ejection fraction; non-dose-dependent decreases in heart rate and circumferential fiber shortening rate. Although a pronounced dose-related negative inotropic effect of halothane in the pig heart was demonstrated, there was no definite effect on ventricular pressure-volume relationships (compliance). If there was any such effect of halothane, it was obscured by the cardiac depression produced.

Animals

Myocardial metabolism and oxygenation in man awake and during halothane anesthesia.

Cardiac catheters were placed in seven healthy conscious patients so that aortic and left ventricular pressures (and the derivative), cardiac output (thermodilution) and myocardial blood flow (argon washin) could be measured. Blood was drawn for measurement of arterial blood-gas and arterial and coronary venous oxygen, glucose, lactate, pyruvate and fatty acid values. After induction of anesthesia by inhalation of halothane, the measurements were made during administration of low (0.70%) and high (1.54%) end-tidal halothane concentrations. Myocardial function decreased in a dose-related fashion without a change in heart rate. Myocardial blood flow and oxygen consumption were depressed in a similar manner. Myocardial oxygen extraction decreased and lactate did not change, suggesting that myocardial oxygenation was adequate. The heart rate-systolic blood pressure product correlated poorly with myocardial oxygen consumption. Systolic blood and the contractile performance index dP/dt/IP were better correlated with myocardial oxygen consumption, but the value of the coefficient was still low. Without significant changes in heart rate, systolic blood pressure is the best correlate of myocardial oxygen consumption in healthy man during the myocardial depression produced by halothane.

Adult

Myocardial metabolism for the toxicologist.

Drug effects on myocardial contractile function are obviously of considerable practical importance for the toxicologist. The basic mechanism of such actions must reside at some point in the metabolism of cardiac muscle. Interference in the liberation of energy from the fuels that the heart uses may be implicated. It is possible that drugs may interfere with the storage (conservation) of that energy as the high energy phosphates (ATP and CP). Finally, the utilization of that stored energy by the contractile proteins themselves may be altered. The latter process is highly dependent on intracellular calcium ion kinetics. Anesthetic drugs, which produce reversible depression of myocardial contractile function is a dose-dependent fashion, have been shown to interfere to some extent with all three processes. However, the most important mechanism probably involves utilization of energy and intracellular calcium ion movement. A basic knowledge of the biochemistry of cardiac muscle is necessary for the understanding of drug action and toxicity at the subcellular level.

Adenosine Triphosphate