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猪心肌缺血中的线粒体内膜酶缺陷

Mitochondrial inner membrane enzyme defects in porcine myocardial ischemia.

作者信息

Rouslin W, Millard R W

出版信息

Am J Physiol. 1981 Feb;240(2):H308-13. doi: 10.1152/ajpheart.1981.240.2.H308.

Abstract

Left anterior descending coronary artery occlusion in anesthetized pigs produced a stable transmural ischemia characterized by a rapid and then sustained loss of blood flow and mechanical function. After 2 h of occlusion, mitochondria from the ischemic area exhibited a 36 +/- 6% drop in state 3 respiratory activity (QO2) supported by the NAD-linked substrates, glutamate plus malate, but only a 5 +/- 3% decrease in QO2 with succinate plus rotenone. The activity of electron transfer complex I (NADH-CoQ reductase) decreased commensurately by 33 +/- 4% with the decrease in QO2 with NAD-linked substrates. Consistent with the nearly unchanged QO2 with succinate plus rotenone, the activities of electron transfer complexes III and IV decreased only slightly by 9 +/- 5% and 9 +/- 4%, respectively. Mitochondrial ATPase (complex V) activity decreased by 48 +/- 2% with little change in its oligomycin sensitivity. A 48% drop in ATPase activity was shown, by means of oligomycin titrations, to correspond to a 32% decrease in NAD-linked substrate supported QO2. The decreases observed in NADH-CoQ reductase and ATPase activities each account nearly quantitatively for the impaired mitochondrial phosphorylating respiration observed during sustained myocardial ischemia. These results suggest that mitochondrial inner enzyme complexes I and V are important sites of cellular injury in myocardial ischemia.

摘要

在麻醉猪身上,左冠状动脉前降支闭塞会导致稳定的透壁性缺血,其特征是血流和机械功能迅速丧失,随后持续下降。闭塞2小时后,缺血区域的线粒体在由烟酰胺腺嘌呤二核苷酸(NAD)相关底物谷氨酸加苹果酸支持的状态3呼吸活性(QO2)下降了36±6%,但在琥珀酸加鱼藤酮存在时,QO2仅下降了5±3%。电子传递复合体I(NADH-辅酶Q还原酶)的活性随着NAD相关底物导致的QO2下降相应地降低了33±4%。与琥珀酸加鱼藤酮存在时QO2几乎不变一致,电子传递复合体III和IV的活性仅分别略有下降,为9±5%和9±4%。线粒体ATP酶(复合体V)的活性下降了48±2%,其对寡霉素的敏感性变化不大。通过寡霉素滴定法显示,ATP酶活性下降48%对应于NAD相关底物支持的QO2下降32%。在持续心肌缺血期间观察到的线粒体磷酸化呼吸受损,NADH-辅酶Q还原酶和ATP酶活性的下降几乎在数量上各占一部分原因。这些结果表明,线粒体内部酶复合体I和V是心肌缺血时细胞损伤的重要部位。

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