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从线粒体基质输出N端尾巴。遵循膜蛋白拓扑结构的原核生物“内正”规则。

N-terminal tail export from the mitochondrial matrix. Adherence to the prokaryotic "positive-inside" rule of membrane protein topology.

作者信息

Rojo E E, Guiard B, Neupert W, Stuart R A

机构信息

Institut für Physiologische Chemie der Universität München, Goethestrasse 33, 80336 München, Germany.

出版信息

J Biol Chem. 1999 Jul 9;274(28):19617-22. doi: 10.1074/jbc.274.28.19617.

Abstract

Export of N-terminal tails of mitochondrial inner membrane proteins from the mitochondrial matrix is a membrane potential-dependent process, mediated by the Oxa1p translocation machinery. The hydrophilic segments of these membrane proteins, which undergo export, display a characteristic charge profile where intermembrane space-localized segments bear a net negative charge, whereas those remaining in the matrix have a net positive one. Using a model protein, preSu9(1-112)-dihydrofolate reductase (DHFR), which undergoes Oxa1p-mediated N-tail export, we demonstrate here that the net charge of N- and C-flanking regions of the transmembrane domain play a critical role in determining the orientation of the insertion process. The N-tail must bear a net negative charge to be exported to the intermembrane space. Furthermore, a net positive charge of the C-terminal region supports this N-tail export event. These data provide experimental evidence that protein export in mitochondria adheres to the "positive-inside" rule, described for sec-independent sorting of membrane proteins in prokaryotes. We propose here that the importance of a charge profile reflects a need for specific protein-protein interactions to occur in the export reaction, presumably at the level of the Oxa1p export machinery.

摘要

线粒体内膜蛋白的N端尾巴从线粒体基质输出是一个依赖膜电位的过程,由Oxa1p转运机制介导。这些经历输出的膜蛋白的亲水片段呈现出一种特征性的电荷分布,其中定位在线粒体内外膜间隙的片段带有净负电荷,而留在基质中的片段带有净正电荷。使用一种模型蛋白,即经过Oxa1p介导的N端尾巴输出的preSu9(1-112)-二氢叶酸还原酶(DHFR),我们在此证明跨膜结构域的N端和C端侧翼区域的净电荷在决定插入过程的方向中起关键作用。N端尾巴必须带有净负电荷才能输出到线粒体内外膜间隙。此外,C端区域的净正电荷支持这种N端尾巴输出事件。这些数据提供了实验证据,表明线粒体中的蛋白质输出遵循原核生物中膜蛋白不依赖Sec的分选所描述的“正内”规则。我们在此提出,电荷分布的重要性反映了在输出反应中可能在Oxa1p输出机制水平上发生特定蛋白质-蛋白质相互作用的必要性。

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