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内体蛋白回收及其他:Retromer 复合物。

The retromer complex - endosomal protein recycling and beyond.

机构信息

University of Cambridge, Cambridge Institute for Medical Research, UK.

出版信息

J Cell Sci. 2012 Oct 15;125(Pt 20):4693-702. doi: 10.1242/jcs.103440. Epub 2012 Nov 12.

Abstract

The retromer complex is a vital element of the endosomal protein sorting machinery that is conserved across all eukaryotes. Retromer is most closely associated with the endosome-to-Golgi retrieval pathway and is necessary to maintain an active pool of hydrolase receptors in the trans-Golgi network. Recent progress in studies of retromer have identified new retromer-interacting proteins, including the WASH complex and cargo such as the Wntless/MIG-14 protein, which now extends the role of retromer beyond the endosome-to-Golgi pathway and has revealed that retromer is required for aspects of endosome-to-plasma membrane sorting and regulation of signalling events. The interactions between the retromer complex and other macromolecular protein complexes now show how endosomal protein sorting is coordinated with actin assembly and movement along microtubules, and place retromer squarely at the centre of a complex set of protein machinery that governs endosomal protein sorting. Dysregulation of retromer-mediated endosomal protein sorting leads to various pathologies, including neurodegenerative diseases such as Alzheimer disease and spastic paraplegia and the mechanisms underlying these pathologies are starting to be understood. In this Commentary, I will highlight recent advances in the understanding of retromer-mediated endosomal protein sorting and discuss how retromer contributes to a diverse set of physiological processes.

摘要

回转体复合物是内体蛋白分选机制中的一个重要组成部分,在所有真核生物中都保守存在。回转体与内体到高尔基体的回收途径最为密切相关,对于维持高尔基体网络中转体中水解酶受体的活性池是必需的。最近对回转体的研究进展确定了新的与回转体相互作用的蛋白质,包括 WASH 复合物和货物,如 Wntless/MIG-14 蛋白,这现在将回转体的作用扩展到内体到高尔基体途径之外,并揭示了回转体对于内体到质膜分选和信号事件调节的各个方面是必需的。回转体复合物与其他大分子蛋白质复合物之间的相互作用现在表明内体蛋白分选如何与肌动蛋白组装和沿着微管运动相协调,并将回转体置于一个复杂的蛋白质机器的中心,该机器控制着内体蛋白的分选。回转体介导的内体蛋白分选的失调导致各种病理学,包括神经退行性疾病,如阿尔茨海默病和痉挛性截瘫,并且这些病理学的机制开始被理解。在这篇评论中,我将强调理解回转体介导的内体蛋白分选的最新进展,并讨论回转体如何有助于一系列不同的生理过程。

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