Mitochondrial dynamics: overview of molecular mechanisms

线粒体分裂 线粒体融合 细胞生物学 生物 线粒体 动力素 线粒体内膜 线粒体凋亡诱导通道 内膜转移酶 线粒体膜转运蛋白 DNAJA3公司 外膜转位酶 GTP酶 线粒体载体 生物化学 细菌外膜 细胞 线粒体DNA 内吞作用 基因 大肠杆菌
作者
Lisa Tilokani,Shun Nagashima,Vincent Paupe,Julien Prudent
出处
期刊:Essays in Biochemistry [Portland Press]
卷期号:62 (3): 341-360 被引量:942
标识
DOI:10.1042/ebc20170104
摘要

Mitochondria are highly dynamic organelles undergoing coordinated cycles of fission and fusion, referred as ‘mitochondrial dynamics’, in order to maintain their shape, distribution and size. Their transient and rapid morphological adaptations are crucial for many cellular processes such as cell cycle, immunity, apoptosis and mitochondrial quality control. Mutations in the core machinery components and defects in mitochondrial dynamics have been associated with numerous human diseases. These dynamic transitions are mainly ensured by large GTPases belonging to the Dynamin family. Mitochondrial fission is a multi-step process allowing the division of one mitochondrion in two daughter mitochondria. It is regulated by the recruitment of the GTPase Dynamin-related protein 1 (Drp1) by adaptors at actin- and endoplasmic reticulum-mediated mitochondrial constriction sites. Drp1 oligomerization followed by mitochondrial constriction leads to the recruitment of Dynamin 2 to terminate membrane scission. Inner mitochondrial membrane constriction has been proposed to be an independent process regulated by calcium influx. Mitochondrial fusion is driven by a two-step process with the outer mitochondrial membrane fusion mediated by mitofusins 1 and 2 followed by inner membrane fusion, mediated by optic atrophy 1. In addition to the role of membrane lipid composition, several members of the machinery can undergo post-translational modifications modulating these processes. Understanding the molecular mechanisms controlling mitochondrial dynamics is crucial to decipher how mitochondrial shape meets the function and to increase the knowledge on the molecular basis of diseases associated with morphology defects. This article will describe an overview of the molecular mechanisms that govern mitochondrial fission and fusion in mammals.
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