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酵母液泡膜蛋白质组。

The yeast vacuolar membrane proteome.

作者信息

Wiederhold Elena, Gandhi Tejas, Permentier Hjalmar P, Breitling Rainer, Poolman Bert, Slotboom Dirk J

机构信息

Department of Biochemistry, Groningen Biomolecular Sciences and Biotechnology Institute and Zernike Institute for Advanced Materials, University of Groningen, Groningen, The Netherlands.

出版信息

Mol Cell Proteomics. 2009 Feb;8(2):380-92. doi: 10.1074/mcp.M800372-MCP200. Epub 2008 Nov 10.

Abstract

Transport of solutes between the cytosol and the vacuolar lumen is of crucial importance for various functions of vacuoles, including ion homeostasis; detoxification; storage of different molecules such as amino acids, phosphate, and calcium ions; and proteolysis. To identify proteins that catalyze solute transport across the vacuolar membrane, the membrane proteome of purified Saccharomyces cerevisiae vacuoles was analyzed. Subtractive proteomics was used to distinguish contaminants from true vacuolar proteins by comparing the relative abundances of proteins in pure and crude preparations. A robust statistical analysis combining enrichment ranking with the double boundary iterative group analysis revealed that 148 proteins were significantly enriched in the pure vacuolar preparations. Among these proteins were well characterized vacuolar proteins, such as the subunits of the vacuolar H(+)-ATPase, but also proteins that had not previously been assigned to a cellular location, many of which are likely novel vacuolar membrane transporters, e.g. for nucleosides and oligopeptides. Although the majority of contaminating proteins from other organelles were depleted from the pure vacuolar membranes, some proteins annotated to reside in other cellular locations were enriched along with the vacuolar proteins. In many cases the enrichment of these proteins is biologically relevant, and we discuss that a large group is involved in membrane fusion and protein trafficking to vacuoles and may have multiple localizations. Other proteins are degraded in vacuoles, and in some cases database annotations are likely to be incomplete or incorrect. Our work provides a wealth of information on vacuolar biology and a solid basis for further characterization of vacuolar functions.

摘要

溶质在细胞质溶胶和液泡腔之间的运输对于液泡的各种功能至关重要,这些功能包括离子稳态、解毒、储存不同分子(如氨基酸、磷酸盐和钙离子)以及蛋白水解。为了鉴定催化溶质跨液泡膜运输的蛋白质,对纯化的酿酒酵母液泡的膜蛋白质组进行了分析。通过比较纯制剂和粗制剂中蛋白质的相对丰度,采用消减蛋白质组学来区分污染物和真正的液泡蛋白。一项将富集排序与双边界迭代组分析相结合的稳健统计分析表明,148种蛋白质在纯液泡制剂中显著富集。这些蛋白质中既有已被充分表征的液泡蛋白,如液泡H(+) -ATP酶的亚基,也有以前未被指定细胞定位的蛋白质,其中许多可能是新型液泡膜转运蛋白,例如用于核苷和寡肽的转运蛋白。虽然来自其他细胞器的大多数污染蛋白从纯液泡膜中被去除,但一些注释为位于其他细胞位置的蛋白质与液泡蛋白一起富集。在许多情况下,这些蛋白质的富集具有生物学相关性,我们讨论了一大类蛋白质参与膜融合和蛋白质向液泡的运输,并且可能具有多个定位。其他蛋白质在液泡中被降解,在某些情况下,数据库注释可能不完整或不正确。我们的工作提供了大量关于液泡生物学的信息,并为进一步表征液泡功能奠定了坚实的基础。

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