Mitochondrial fission - changing perspectives for future progress.

IF 3.6 3区 生物学 Q3 CELL BIOLOGY Journal of cell science Pub Date : 2025-05-01 Epub Date: 2025-03-19 DOI:10.1242/jcs.263640
Sukrut C Kamerkar, Ao Liu, Henry N Higgs
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Abstract

Mitochondrial fission is important for many aspects of cellular homeostasis, including mitochondrial distribution, stress response, mitophagy, mitochondrially derived vesicle production and metabolic regulation. Several decades of research has revealed much about fission, including identification of a key division protein - the dynamin Drp1 (also known as DNM1L) - receptors for Drp1 on the outer mitochondrial membrane (OMM), including Mff, MiD49 and MiD51 (also known as MIEF2 and MIEF1, respectively) and Fis1, and important Drp1 regulators, including post-translational modifications, actin filaments and the phospholipid cardiolipin. In addition, it is now appreciated that other organelles, including the endoplasmic reticulum, lysosomes and Golgi-derived vesicles, can participate in mitochondrial fission. However, a more holistic understanding of the process is lacking. In this Review, we address three questions that highlight knowledge gaps. First, how do we quantify mitochondrial fission? Second, how does the inner mitochondrial membrane (IMM) divide? Third, how many 'types' of fission exist? We also introduce a model that integrates multiple regulatory factors in mammalian mitochondrial fission. In this model, three possible pathways (cellular stimulation, metabolic switching or mitochondrial dysfunction) independently initiate Drp1 recruitment at the fission site, followed by a shared second step in which Mff mediates subsequent assembly of a contractile Drp1 ring. We conclude by discussing some perplexing issues in fission regulation, including the effects of Drp1 phosphorylation and the multiple Drp1 isoforms.

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线粒体裂变——改变未来进展的前景。
线粒体分裂对细胞平衡的许多方面都很重要,包括线粒体分布、应激反应、有丝分裂、线粒体衍生囊泡的产生和代谢调节。数十年的研究揭示了裂变的许多方面,包括确定了一种关键的分裂蛋白--动态蛋白 Drp1(又称 DNM1L)--线粒体外膜(OMM)上的 Drp1 受体,包括 Mff、MiD49 和 MiD51(分别称为 MIEF2 和 MIEF1)以及 Fis1,以及重要的 Drp1 调节因子,包括翻译后修饰、肌动蛋白丝和磷脂心磷脂。此外,现在人们还认识到,其他细胞器,包括内质网、溶酶体和高尔基衍生小泡,也能参与线粒体裂变。然而,人们对这一过程还缺乏更全面的了解。在这篇综述中,我们将讨论三个突出知识空白的问题。首先,我们如何量化线粒体裂变?第二,线粒体内膜(IMM)是如何分裂的?第三,裂变有多少 "类型"?我们还引入了一个模型,该模型整合了哺乳动物线粒体分裂过程中的多种调控因素。在该模型中,三种可能的途径(细胞刺激、新陈代谢转换或线粒体功能障碍)在裂变位点独立启动 Drp1 招募,然后是共同的第二步,在这一步中,Mff 介导随后的收缩 Drp1 环的组装。最后,我们讨论了裂变调控中一些令人困惑的问题,包括 Drp1 磷酸化和多种 Drp1 异构体的影响。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Journal of cell science
Journal of cell science 生物-细胞生物学
CiteScore
7.30
自引率
2.50%
发文量
393
审稿时长
1.4 months
期刊介绍: Journal of Cell Science publishes cutting-edge science, encompassing all aspects of cell biology.
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