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一种由线粒体外膜和内膜蛋白转运体组成的多亚基复合物,在体内由转运中间体稳定。

A multisubunit complex of outer and inner mitochondrial membrane protein translocases stabilized in vivo by translocation intermediates.

作者信息

Schülke N, Sepuri N B, Gordon D M, Saxena S, Dancis A, Pain D

机构信息

Department of Physiology, University of Pennsylvania School of Medicine, Philadelphia, Pennsylvania 19104-6085, USA.

出版信息

J Biol Chem. 1999 Aug 6;274(32):22847-54. doi: 10.1074/jbc.274.32.22847.

DOI:10.1074/jbc.274.32.22847
PMID:10428870
Abstract

Translocation of nuclear encoded preproteins into the mitochondrial matrix requires the coordinated action of two translocases: one (Tom) located in the outer mitochondrial membrane and the other (Tim) located in the inner membrane. These translocases reversibly cooperate during protein import. We have previously constructed a chimeric precursor (pPGPrA) consisting of an authentic mitochondrial precursor at the N terminus (Delta(1)-pyrroline-5-carboxylate dehydrogenase, pPut) linked, through glutathione S-transferase, to protein A. When pPGPrA is expressed in yeast, it becomes irreversibly arrested during translocation across the outer and inner mitochondrial membranes. Consequently, the two membranes of mitochondria become progressively "zippered" together, forming long stretches in which they are in close contact (Schülke, N., Sepuri, N. B. V., and Pain, D. (1997) Proc. Natl. Acad. Sci. U. S. A. 94, 7314-7319). We now demonstrate that trapped PGPrA intermediates hold the import channels stably together and inhibit mitochondrial protein import and cell growth. Using IgG-Sepharose affinity chromatography of solubilized zippered membranes, we have isolated a multisubunit complex that contains all Tom and Tim components known to be essential for import of matrix-targeted proteins, namely Tom40, Tom22, Tim17, Tim23, Tim44, and matrix-localized Hsp70. Further characterization of this complex may shed light on structural features of the complete mitochondrial import machinery.

摘要

核编码前体蛋白转运至线粒体基质需要两种转运酶的协同作用

一种(Tom)位于线粒体外膜,另一种(Tim)位于内膜。这些转运酶在蛋白质导入过程中可逆地协同作用。我们之前构建了一种嵌合前体(pPGPrA),其N端由一个真实的线粒体前体(Δ1-吡咯啉-5-羧酸脱氢酶,pPut)通过谷胱甘肽S-转移酶与蛋白A相连。当pPGPrA在酵母中表达时,它在跨线粒体外膜和内膜转运过程中会不可逆地停滞。因此,线粒体的两层膜会逐渐“拉链式”合拢,形成它们紧密接触的长片段(舒尔克,N.,塞普里,N.B.V.,和佩恩,D.(1997年)《美国国家科学院院刊》94,7314 - 7319)。我们现在证明,被困的PGPrA中间体将导入通道稳定地结合在一起,抑制线粒体蛋白导入和细胞生长。通过对溶解的拉链式膜进行IgG - 琼脂糖亲和层析,我们分离出了一种多亚基复合物,它包含所有已知对基质靶向蛋白导入至关重要的Tom和Tim组分,即Tom40、Tom22、Tim17、Tim23、Tim44和基质定位的Hsp70。对该复合物的进一步表征可能会揭示完整线粒体导入机制的结构特征。

相似文献

1
A multisubunit complex of outer and inner mitochondrial membrane protein translocases stabilized in vivo by translocation intermediates.一种由线粒体外膜和内膜蛋白转运体组成的多亚基复合物,在体内由转运中间体稳定。
J Biol Chem. 1999 Aug 6;274(32):22847-54. doi: 10.1074/jbc.274.32.22847.
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In vivo zippering of inner and outer mitochondrial membranes by a stable translocation intermediate.通过稳定的易位中间体实现线粒体内外膜的体内拉链式连接。
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The Tim core complex defines the number of mitochondrial translocation contact sites and can hold arrested preproteins in the absence of matrix Hsp70-Tim44.Tim核心复合体决定了线粒体易位接触位点的数量,并且在没有基质Hsp70-Tim44的情况下能够保留停滞的前体蛋白。
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Functional cooperation and stoichiometry of protein translocases of the outer and inner membranes of mitochondria.线粒体外膜和内膜蛋白质转运体的功能协作与化学计量关系
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Multiple interactions of components mediating preprotein translocation across the inner mitochondrial membrane.介导前体蛋白穿过线粒体内膜转运的各组分间的多重相互作用。
EMBO J. 1997 May 1;16(9):2205-16. doi: 10.1093/emboj/16.9.2205.
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Biogenesis of Tim23 and Tim17, integral components of the TIM machinery for matrix-targeted preproteins.Tim23和Tim17的生物合成,它们是用于靶向基质前体蛋白的TIM机制的组成部分。
EMBO J. 1998 Mar 16;17(6):1569-76. doi: 10.1093/emboj/17.6.1569.
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Import of carrier proteins into the mitochondrial inner membrane mediated by Tim22.由Tim22介导的载体蛋白导入线粒体内膜。
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Separation of structural and dynamic functions of the mitochondrial translocase: Tim44 is crucial for the inner membrane import sites in translocation of tightly folded domains, but not of loosely folded preproteins.线粒体转位酶结构与动态功能的分离:Tim44对于紧密折叠结构域转位时内膜导入位点至关重要,但对松散折叠前体蛋白的转位并非如此。
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The preprotein translocase of the mitochondrial inner membrane: function and evolution.线粒体内膜前体蛋白转位酶:功能与进化
J Mol Biol. 1999 Feb 12;286(1):105-20. doi: 10.1006/jmbi.1998.2455.

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