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R D Tanz

Publications and source records attributed to R D Tanz.

27 records · Page 2Linked to original sources

Cardiac effects of amrinone on rabbit papillary muscle and guinea pig Langendorff heart preparations.

Amrinone (50-1,000 microgram/ml) produces a dose-dependent inotropic action on rabbit papillary muscle. The hypodynamic state following prolonged stimulation is prevented or abolished by amrinone, and contractile force remains significantly elevated over drug-free controls throughout the ensuing 3-h duration of exposure. In a concentration of 1 mg/ml, dysrhythmic phenomena occasionally appeared, e.g., bigeminy, automaticity, and elevated threshold to electrical stimulation. Bigeminy could be abolished either by increasing the external K+ concentration in the bathing media, or by raising the stimulating voltage. However, amrinone failed to alter the refractory period following 60 min of exposure. In isolated perfused guinea pig Langendorff heart preparations, amrinone (50 microgram/ml) significantly increased coronary flow, myocardial oxygen consumption (MVO2), cardiac work, and, during the period of peak activity, dP/dt. However, it had no significant effect on cardiac efficiency. And, as in the papillary muscle preparation, the effect of amrinone was easily reversed by perfusing the preparation with fresh (no-drug) media. Preliminary evidence shows that amrinone fails to reverse the negative inotropic action of verapamil as well as calcium-free media, although the effects on heart rate, coronary flow, and MVO2 were reversed. However, the higher the external calcium concentration, the greater was the level of contractile response achieved by amrinone. Thus, the mechanism of amrinone-induced augmentation appears to be dependent upon the availability of calcium.

Aminopyridines↗

Concentration-dependent desensitization of isolated porcine coronary arterial segments to acetylcholine.

Acetylcholine elicited an increase in developed tension on isolated porcine coronary arterial rings at concentrations exceeding 1.1 x 10(-7) M. However, at concentrations greater than 3.3 x 10(-6) M, desensitization occurred with repeated exposures to acetylcholine. When rings were first exposed to 3.3 x 10(-6) M, then washed and subsequently exposed to 3.3 x 10(-5) M, tension was either unchanged or significantly reduced, giving rise to two different population effects. Although atropine completely antagonized the effect of acetylcholine, pretreatment with methysergide (5-HT2), mepyramine (H1) and prazosin (alpha 1) did not attenuate acetylcholine-induced desensitization, indicating that the phenomenon is unrelated to either serotonin, H1- or alpha-adrenergic receptor activation. Diltiazem and nifedipine significantly reduced or completely inhibited contractions produced by K+ depolarization, but not those produced by acetylcholine. Moreover, ryanodine did not alter the tension developed by repeated exposures to acetylcholine. Our results suggest that acetylcholine activates specific receptor-operated channels which are less sensitive to calcium antagonists than K(+)-activated voltage-dependent channels. Moreover, acetylcholine-induced contractions in this model do not appear to be the result of calcium release from the sarcoplasmic reticulum since ryanodine failed to attenuate contractions.

Acetylcholine↗