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首页> 外文期刊>The Journal of biological chemistry >Membrane Tethering and Nucleotide-dependent Conformational Changes Drive Mitochondrial Genome Maintenance (Mgm1) Protein-mediated Membrane Fusion
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Membrane Tethering and Nucleotide-dependent Conformational Changes Drive Mitochondrial Genome Maintenance (Mgm1) Protein-mediated Membrane Fusion

机译:膜束缚和核苷酸依赖性构象变化驱动线粒体基因组维持(MgM1)蛋白介导的膜融合

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摘要

Cellular membrane remodeling events such as mitochondrial dynamics, vesicle budding, and cell division rely on the large GTPases of the dynamin superfamily. Dynamins have long been characterized as fission molecules; however, how they mediate membrane fusion is largely unknown. Here we have characterized by cryo-electron microscopy and in vitro liposome fusion assays how the mitochondrial dynamin Mgm1 may mediate membrane fusion. Using cryo-EM, we first demonstrate that the Mgm1 complex is able to tether opposing membranes to a gap of ~15 nm, the size of mitochondrial cristae folds. We further show that the Mgm1 oligomer undergoes a dramatic GTP-dependent conformational change suggesting that s-Mgm1 interactions could overcome repelling forces at fusion sites and that ultrastructural changes could promote the fusion of opposing membranes. Together our findings provide mechanistic details of the two known in vivo functions of Mgm1, membrane fusion and cristae maintenance, and more generally shed light onto how dynamins may function as fusion proteins.
机译:细胞膜重塑事件,如线粒体动力学,囊泡芽和细胞分裂依赖于动力学超家族的大GTP酶。 Dynamins长期以来被描述为裂变分子;然而,它们如何介导膜融合在很大程度上是未知的。在这里,我们的表征是低温电子显微镜和体外脂质体融合测定的线粒体发电机MGM1可以介导膜融合。使用Cryo-em,首先证明MgM1络合物能够将相对的膜系在〜15nm的间隙中,线粒体嵴折叠的尺寸。我们进一步表明,MgM1寡聚物经历了戏剧性的GTP依赖性构象变化,表明S-MGM1相互作用可以克服融合位点的排斥力,并且超微结构的变化可以促进相反的膜的融合。我们的研究结果一起提供了MgM1,膜融合和嵴维持的两种函数中所知的机械细节,以及Dynamins如何用作融合蛋白的方式更大的铰接光。

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