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帕金森蛋白(Parkin)与动力相关蛋白1(Drp1)在线粒体分裂和清除过程中的功能相互作用。

Functional interplay between Parkin and Drp1 in mitochondrial fission and clearance.

作者信息

Buhlman Lori, Damiano Maria, Bertolin Giulia, Ferrando-Miguel Rosa, Lombès Anne, Brice Alexis, Corti Olga

机构信息

Inserm, U 1127, F-75013 Paris, France; CNRS, UMR 7225, F-75013 Paris, France; Sorbonne Universités, UPMC Univ Paris 06, UMR S 1127, F-75013 Paris, France; Institut du Cerveau et de la Moelle épinière, ICM, F-75013, Paris, France; Department of Biomedical Sciences, Midwestern University, 19555N 59th Avenue, Glendale, Arizona 85308, United States.

Inserm, U 1127, F-75013 Paris, France; CNRS, UMR 7225, F-75013 Paris, France; Sorbonne Universités, UPMC Univ Paris 06, UMR S 1127, F-75013 Paris, France; Institut du Cerveau et de la Moelle épinière, ICM, F-75013, Paris, France.

出版信息

Biochim Biophys Acta. 2014 Sep;1843(9):2012-26. doi: 10.1016/j.bbamcr.2014.05.012. Epub 2014 May 27.

Abstract

Autosomal recessive early-onset Parkinson's disease is most often caused by mutations in the genes encoding the cytosolic E3 ubiquitin ligase Parkin and the mitochondrial serine/threonine kinase PINK1. Studies in Drosophila models and mammalian cells have demonstrated that these proteins regulate various aspects of mitochondrial physiology, including organelle transport, dynamics and turnover. How PINK1 and Parkin orchestrate these processes, and whether they always do so within a common pathway remain to be clarified. We have revisited the role of PINK1 and Parkin in mitochondrial dynamics, and explored its relation to the mitochondrial clearance program controlled by these proteins. We show that PINK1 and Parkin promote Drp1-dependent mitochondrial fission by mechanisms that are at least in part independent. Parkin-mediated mitochondrial fragmentation was abolished by treatments interfering with the calcium/calmodulin/calcineurin signaling pathway, suggesting that it requires dephosphorylation of serine 637 of Drp1. Parkinson's disease-causing mutations with differential impact on mitochondrial morphology and organelle degradation demonstrated that the pro-fission effect of Parkin is not required for efficient mitochondrial clearance. In contrast, the use of Förster energy transfer imaging microscopy revealed that Drp1 and Parkin are co-recruited to mitochondria in proximity of PINK1 following mitochondrial depolarization, indicating spatial coordination between these events in mitochondrial degradation. Our results also hint at a major role of the outer mitochondrial adaptor MiD51 in Drp1 recruitment and Parkin-dependent mitophagy. Altogether, our observations provide new insight into the mechanisms underlying the regulation of mitochondrial dynamics by Parkin and its relation to the mitochondrial clearance program mediated by the PINK1/Parkin pathway.

摘要

常染色体隐性早发性帕金森病最常见的病因是编码胞质E3泛素连接酶Parkin和线粒体丝氨酸/苏氨酸激酶PINK1的基因突变。在果蝇模型和哺乳动物细胞中的研究表明,这些蛋白质调节线粒体生理学的各个方面,包括细胞器运输、动态变化和更新。PINK1和Parkin如何协调这些过程,以及它们是否总是在共同的途径中发挥作用仍有待阐明。我们重新审视了PINK1和Parkin在线粒体动态变化中的作用,并探讨了其与这些蛋白质控制的线粒体清除程序的关系。我们发现,PINK1和Parkin通过至少部分独立的机制促进依赖于Drp1的线粒体分裂。干扰钙/钙调蛋白/钙调磷酸酶信号通路的处理消除了Parkin介导的线粒体碎片化,这表明它需要Drp1丝氨酸637去磷酸化。对线粒体形态和细胞器降解有不同影响的帕金森病致病突变表明,Parkin的促分裂作用对于有效的线粒体清除不是必需的。相反,荧光共振能量转移成像显微镜的使用显示,线粒体去极化后,Drp1和Parkin在PINK1附近共同被招募到线粒体,这表明线粒体降解过程中这些事件之间存在空间协调。我们的结果还暗示线粒体外膜衔接蛋白MiD51在Drp1招募和Parkin依赖性线粒体自噬中起主要作用。总之,我们的观察结果为Parkin调节线粒体动态变化的机制及其与PINK1/Parkin途径介导的线粒体清除程序的关系提供了新的见解。

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