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胸腺细胞和艾氏腹水癌细胞中的线粒体ATP水解及ATP耗竭

Mitochondrial ATP hydrolysis and ATP depletion in thymocytes and Ehrlich ascites carcinoma cells.

作者信息

Chernyak B V, Dedov V N, Gabai V L

机构信息

A.N. Belozersky Institute of Physico-Chemical Biology, Moscow State University, Russian Federation.

出版信息

FEBS Lett. 1994 Jan 3;337(1):56-9. doi: 10.1016/0014-5793(94)80629-2.

Abstract

When Ehrlich ascites carcinoma (EAC) cells and thymocytes were treated with uncoupler or rotenone in glucose-free medium, rapid ATP depletion was observed in both types of the cells. Oligomycin slowed down ATP loss in thymocytes, but not in EAC cells. Thus, mitochondrial ATP hydrolysis appears to be significant in deenergized thymocytes in contrast to EAC cells, in which other ATP consuming reactions were prevailing. Complete deenergization of mitochondria by uncoupler or rotenone in these cells resulted in inactivation of mitochondrial ATPase by 65-75%. The effect was observed after complete and rapid (20-30 s) disruption of the cells with detergent, Lubrol WX. ATPase was blocked by the specific inhibitor protein (IF1) as it was shown by the studies on reactivation of this enzyme. When respiration is blocked but ATP content is supported by glycolysis, mitochondrial ATPase is not suppressed by IF1, and maintains the energization of mitochondria. It is concluded that under complete de-energization of mitochondria IF1 significantly inhibits mitochondrial ATP hydrolysis and may slow down ATP loss in thymocytes and EAC cells.

摘要

当在无葡萄糖培养基中用解偶联剂或鱼藤酮处理艾氏腹水癌细胞(EAC)和胸腺细胞时,在这两种类型的细胞中均观察到ATP的快速消耗。寡霉素减缓了胸腺细胞中ATP的损失,但对EAC细胞无效。因此,与EAC细胞相比,线粒体ATP水解在失能的胸腺细胞中似乎很重要,在EAC细胞中其他ATP消耗反应占主导地位。用解偶联剂或鱼藤酮使这些细胞中的线粒体完全失能,导致线粒体ATP酶失活65 - 75%。在用去污剂Lubrol WX完全且快速(20 - 30秒)破坏细胞后观察到了这种效应。如对该酶再激活的研究所表明的,ATP酶被特异性抑制蛋白(IF1)阻断。当呼吸被阻断但ATP含量由糖酵解维持时,线粒体ATP酶不会被IF1抑制,并维持线粒体的能量化状态。得出的结论是,在线粒体完全失能的情况下,IF1显著抑制线粒体ATP水解,并可能减缓胸腺细胞和EAC细胞中ATP的损失。

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