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线粒体融合蛋白 Fzo1 的 GTPase 结构域和泛素连接酶 SCFMdm30 在外膜融合中的顺序要求。

Sequential requirements for the GTPase domain of the mitofusin Fzo1 and the ubiquitin ligase SCFMdm30 in mitochondrial outer membrane fusion.

机构信息

Center for Cancer Research, NCI-Frederick, MD 21702, USA.

出版信息

J Cell Sci. 2011 May 1;124(Pt 9):1403-10. doi: 10.1242/jcs.079293.

DOI:10.1242/jcs.079293
PMID:21502136
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC3078809/
Abstract

The ability of cells to respire requires that mitochondria undergo fusion and fission of their outer and inner membranes. The means by which levels of fusion 'machinery' components are regulated and the molecular details of how fusion occurs are largely unknown. In Saccharomyces cerevisiae, a central component of the mitochondrial outer membrane (MOM) fusion machinery is the mitofusin Fzo1, a dynamin-like GTPase. We demonstrate that an early step in fusion, mitochondrial tethering, is dependent on the Fzo1 GTPase domain. Furthermore, the ubiquitin ligase SCF(Mdm30) (a SKP1-cullin-1-F-box complex that contains Mdm30 as the F-box protein), which targets Fzo1 for ubiquitylation and proteasomal degradation, is recruited to Fzo1 as a consequence of a GTPase-domain-dependent alteration in the mitofusin. Moreover, evidence is provided that neither Mdm30 nor proteasome activity are necessary for tethering of mitochondria. However, both Mdm30 and proteasomes are critical for MOM fusion. To better understand the requirement for the ubiquitin-proteasome system in mitochondrial fusion, we used the N-end rule system of degrons and determined that ongoing degradation of Fzo1 is important for mitochondrial morphology and respiration. These findings suggest a sequence of events in early mitochondrial fusion where Fzo1 GTPase-domain-dependent tethering leads to recruitment of SCF(Mdm30) and ubiquitin-mediated degradation of Fzo1, which facilitates mitochondrial fusion.

摘要

细胞呼吸的能力要求线粒体的内外膜经历融合和裂变。融合“机器”组件水平的调节方式以及融合发生的分子细节在很大程度上是未知的。在酿酒酵母中,线粒体外膜(MOM)融合机制的核心组成部分是线粒体融合蛋白 Fzo1,一种类似于 dynamin 的 GTPase。我们证明了融合的早期步骤,即线粒体连接,依赖于 Fzo1 GTP 酶结构域。此外,泛素连接酶 SCF(Mdm30)(一种含有 Mdm30 作为 F 盒蛋白的 SKP1-cullin-1-F-box 复合物),其靶向 Fzo1 进行泛素化和蛋白酶体降解,作为 mitofusin 的 GTP 酶结构域依赖性改变的结果而被招募到 Fzo1。此外,有证据表明,Mdm30 或蛋白酶体活性都不是线粒体连接所必需的。然而,Mdm30 和蛋白酶体对于 MOM 融合都是至关重要的。为了更好地理解泛素-蛋白酶体系统在线粒体融合中的要求,我们使用了 degrons 的 N 端规则系统,并确定了 Fzo1 的持续降解对于线粒体形态和呼吸是重要的。这些发现表明,在早期线粒体融合中存在一系列事件,其中 Fzo1 GTP 酶结构域依赖性的连接导致 SCF(Mdm30)的募集和 Fzo1 的泛素介导降解,从而促进线粒体融合。

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