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钙信号依赖性线粒体功能障碍和呼吸链复合物 II 缺陷中的生物能调节。

Calcium signalling-dependent mitochondrial dysfunction and bioenergetics regulation in respiratory chain Complex II deficiency.

机构信息

INSERM U 807, Paris, F-75015 France.

出版信息

Cell Death Differ. 2010 Dec;17(12):1855-66. doi: 10.1038/cdd.2010.51. Epub 2010 May 21.

Abstract

Despite advanced knowledge on the genetic basis of oxidative phosphorylation-related diseases, the molecular and/or cellular determinants for tissue-specific dysfunction are not completely understood. Here, we report the cellular events associated with mitochondrial respiratory Complex II deficiency occurring before cell death. Mutation or chronic inhibition of Complex II determined a large increase of basal and agonist-evoked Ca(2+) signals in the cytosol and the mitochondria, in parallel with mitochondrial dysfunction characterized by membrane potential (Δψ(mit)) loss, [ATP] reduction and increased reactive oxygen species production. Cytosolic and mitochondrial Ca(2+) overload are linked to increased endoplasmic reticulum (ER) Ca(2+) leakage, and to SERCA2b and PMCA proteasome-dependent degradation. Increased Ca(2+) is also contributed by decreased mitochondrial motility and increased ER-mitochondria contact sites. Interestingly, increased intracellular [Ca(2+)] activated on the one hand a compensatory Ca(2+)-dependent glycolytic ATP production and determined on the second hand mitochondrial pathology. These results revealed the primary function for Ca(2+) signalling in the control of mitochondrial dysfunction and cellular bioenergetics outcomes linked to respiratory chain Complex II deficiency.

摘要

尽管人们对氧化磷酸化相关疾病的遗传基础有了深入的了解,但对于组织特异性功能障碍的分子和/或细胞决定因素还不完全清楚。在这里,我们报告了与呼吸复合物 II 缺陷相关的细胞事件,这些事件发生在细胞死亡之前。复合物 II 的突变或慢性抑制导致细胞溶质和线粒体中基础和激动剂诱导的 Ca(2+)信号大幅增加,同时伴随着线粒体功能障碍,表现为膜电位(Δψ(mit))丧失、[ATP]减少和活性氧产生增加。细胞溶质和线粒体 Ca(2+)超载与内质网(ER)Ca(2+)泄漏增加以及 SERCA2b 和 PMCA 蛋白酶体依赖性降解有关。线粒体运动减少和 ER-线粒体接触点增加也导致了Ca(2+)的增加。有趣的是,增加的细胞内[Ca(2+)]一方面激活了代偿性 Ca(2+)-依赖性糖酵解 ATP 产生,另一方面导致了线粒体病理学。这些结果揭示了 Ca(2+)信号在控制呼吸链复合物 II 缺陷相关的线粒体功能障碍和细胞生物能学结果中的主要作用。

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