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细菌膜蛋白质组学

Bacterial membrane proteomics.

作者信息

Poetsch Ansgar, Wolters Dirk

机构信息

Lehrstuhl für Biochemie der Pflanzen, Ruhr Universität Bochum, Bochum, Germany.

出版信息

Proteomics. 2008 Oct;8(19):4100-22. doi: 10.1002/pmic.200800273.

DOI:10.1002/pmic.200800273
PMID:18780352
Abstract

About one quarter to one third of all bacterial genes encode proteins of the inner or outer bacterial membrane. These proteins perform essential physiological functions, such as the import or export of metabolites, the homeostasis of metal ions, the extrusion of toxic substances or antibiotics, and the generation or conversion of energy. The last years have witnessed completion of a plethora of whole-genome sequences of bacteria important for biotechnology or medicine, which is the foundation for proteome and other functional genome analyses. In this review, we discuss the challenges in membrane proteome analysis, starting from sample preparation and leading to MS-data analysis and quantification. The current state of available proteomics technologies as well as their advantages and disadvantages will be described with a focus on shotgun proteomics. Then, we will briefly introduce the most abundant proteins and protein families present in bacterial membranes before bacterial membrane proteomics studies of the last years will be presented. It will be shown how these works enlarged our knowledge about the physiological adaptations that take place in bacteria during fine chemical production, bioremediation, protein overexpression, and during infections. Furthermore, several examples from literature demonstrate the suitability of membrane proteomics for the identification of antigens and different pathogenic strains, as well as the elucidation of membrane protein structure and function.

摘要

所有细菌基因中约四分之一到三分之一编码细菌内膜或外膜的蛋白质。这些蛋白质执行基本的生理功能,如代谢物的输入或输出、金属离子的稳态、有毒物质或抗生素的排出以及能量的产生或转换。过去几年见证了许多对生物技术或医学重要的细菌全基因组序列的完成,这是蛋白质组和其他功能基因组分析的基础。在本综述中,我们将讨论膜蛋白质组分析中的挑战,从样品制备开始,一直到质谱数据分析和定量。将描述现有蛋白质组学技术的现状及其优缺点,重点是鸟枪法蛋白质组学。然后,在介绍过去几年细菌膜蛋白质组学研究之前,我们将简要介绍细菌膜中最丰富的蛋白质和蛋白质家族。将展示这些研究如何扩展了我们对细菌在精细化学品生产、生物修复、蛋白质过表达以及感染过程中发生的生理适应性的认识。此外,文献中的几个例子证明了膜蛋白质组学在鉴定抗原和不同致病菌株以及阐明膜蛋白结构和功能方面的适用性。

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