Hatch Anna L, Gurel Pinar S, Higgs Henry N
Department of Biochemistry, Geisel School of Medicine at Dartmouth, Hanover, NH 03755, USA.
Department of Biochemistry, Geisel School of Medicine at Dartmouth, Hanover, NH 03755, USA
J Cell Sci. 2014 Nov 1;127(Pt 21):4549-60. doi: 10.1242/jcs.153791. Epub 2014 Sep 12.
Mitochondrial dynamics, including fusion, fission and translocation, are crucial to cellular homeostasis, with roles in cellular polarity, stress response and apoptosis. Mitochondrial fission has received particular attention, owing to links with several neurodegenerative diseases. A central player in fission is the cytoplasmic dynamin-related GTPase Drp1, which oligomerizes at the fission site and hydrolyzes GTP to drive membrane ingression. Drp1 recruitment to the outer mitochondrial membrane (OMM) is a key regulatory event, which appears to require a pre-constriction step in which the endoplasmic reticulum (ER) and mitochondrion interact extensively, a process termed ERMD (ER-associated mitochondrial division). It is unclear how ER-mitochondrial contact generates the force required for pre-constriction or why pre-constriction leads to Drp1 recruitment. Recent results, however, show that ERMD might be an actin-based process in mammals that requires the ER-associated formin INF2 upstream of Drp1, and that myosin II and other actin-binding proteins might be involved. In this Commentary, we present a mechanistic model for mitochondrial fission in which actin and myosin contribute in two ways; firstly, by supplying the force for pre-constriction and secondly, by serving as a coincidence detector for Drp1 binding. In addition, we discuss the possibility that multiple fission mechanisms exist in mammals.
线粒体动力学,包括融合、裂变和易位,对细胞稳态至关重要,在细胞极性、应激反应和细胞凋亡中发挥作用。由于与几种神经退行性疾病有关,线粒体裂变受到了特别关注。裂变中的核心参与者是细胞质动力蛋白相关的GTP酶Drp1,它在裂变位点寡聚并水解GTP以驱动膜内陷。Drp1募集到线粒体外膜(OMM)是一个关键的调节事件,这似乎需要一个预收缩步骤,即内质网(ER)和线粒体广泛相互作用,这个过程称为内质网相关线粒体分裂(ERMD)。目前尚不清楚内质网与线粒体的接触如何产生预收缩所需的力,也不清楚预收缩为何会导致Drp1募集。然而,最近的研究结果表明,在哺乳动物中,ERMD可能是一个基于肌动蛋白的过程,在Drp1上游需要内质网相关的formin INF2,并且肌球蛋白II和其他肌动蛋白结合蛋白可能参与其中。在本评论中,我们提出了一个线粒体裂变的机制模型,其中肌动蛋白和肌球蛋白通过两种方式发挥作用;首先,通过为预收缩提供力,其次,通过作为Drp1结合的巧合探测器。此外,我们还讨论了哺乳动物中存在多种裂变机制的可能性。