[Animal experiment studies on the circulatory effect of ketamine and barbiturate in hemorrhagic shock].
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Biomedical subjects
Publications and source records attributed to J Tarnow.
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The effect of metabolic and hypercapnic acidosis on myocardial blood flow was studied during intravenous infusions of hydrochloric acid solutions (n = 12) and during passive ventilation with 5% CO2 (n = 5) in anaesthetized, closed chest dogs. Below a pH of 7.2 metabolic acidosis at normal arterial CO2-tensions caused an increase of coronary blood flow and a decrease of coronary vascular resistance associated with a narrowed myocardial arteriovenous O2-difference, indicating vasodilation at unchanged myocardial oxygen consumption. In propranolol-pretreated dogs myocardial blood flow and coronary oxygen AV difference remained unaffected, suggesting that the coronary dilatory effect of metabolic acidemia involves beta adrenergic stimulation. Coronary vasodilation induced by increasing arterial pCO2 was found to the significantly greater as compared with the dilatory effect of metabolic acidosis at the same blood pH level. Blocking of beta receptors did not reduce the coronary response to increased arterial CO2-tensions. It is concluded that the coronary vasodilation observed during hypercapnic acidosis is neither mediated by a beta adrenergic stimulation nor dependent of the concomitant change in blood pH. The possible sites of the coronary dilatory actions of increased arterial CO2-tensions are discussed.
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Since cardiovascular depression at induction is among the most common complications of anesthesia this comparative study was undertaken. Unpremedicated dogs (n = 16) were induced with 3 mg/kg piritramide i.v. and normoventilated (N2O/O2 = 2/1). In 8 animals 0.8 and 1.6 mg/kg Etomidate and 5.0 and 10.0 mg/kg thiopentone and in 8 further dogs 5.0 and 10.0 mg/kg Propanidid were tested. Equipotent doses of Thiopentone and Propanidid caused a marked myocardial depression, which was seen in a decrease in stroke volume and max dp/dt and in an increase of leftventricular end-diastolic pressure and pulmonary arterial pressure. The increased myocardial O2- cosumption mainly due to the rise in heart rate was covered after Thiopentone by an increase of coronary bloodflow (measured with a pitot-catheter) and an increase of arterio-coronaryvenous difference in oxygen. As the latter decreased after Propanidid, it appeared that Propanidid has coronary dilatory properties. The results demonstrated the uneconomic work of the heart under the influence of Thiopentone and Propanidid. In contrast to this the cardiovascular system after Etomidate remained nearly unaffected. The data of this study suggest the use of Etomidate rather than Thiopentone and Propanidid in cases of shock syndrome, heart and/or coronary insufficiency.