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利用差异蛋白质组学剖析大肠杆菌外膜生物合成过程

Dissecting Escherichia coli outer membrane biogenesis using differential proteomics.

作者信息

Martorana Alessandra M, Motta Sara, Di Silvestre Dario, Falchi Federica, Dehò Gianni, Mauri Pierluigi, Sperandeo Paola, Polissi Alessandra

机构信息

Dipartimento di Biotecnologie e Bioscienze, Università di Milano-Bicocca, Milan, Italy.

Istituto di Tecnologie Biomediche (ITB-CNR), Segrate, Milan, Italy.

出版信息

PLoS One. 2014 Jun 26;9(6):e100941. doi: 10.1371/journal.pone.0100941. eCollection 2014.

Abstract

The cell envelope of Gram-negative bacteria is a complex multi-layered structure comprising an inner cytoplasmic membrane and an additional asymmetric lipid bilayer, the outer membrane, which functions as a selective permeability barrier and is essential for viability. Lipopolysaccharide, an essential glycolipid located in the outer leaflet of the outer membrane, greatly contributes to the peculiar properties exhibited by the outer membrane. This complex molecule is transported to the cell surface by a molecular machine composed of seven essential proteins LptABCDEFG that form a transenvelope complex and function as a single device. While advances in understanding the mechanisms that govern the biogenesis of the cell envelope have been recently made, only few studies are available on how bacterial cells respond to severe envelope biogenesis defects on a global scale. Here we report the use of differential proteomics based on Multidimensional Protein Identification Technology (MudPIT) to investigate how Escherichia coli cells respond to a block of lipopolysaccharide transport to the outer membrane. We analysed the envelope proteome of a lptC conditional mutant grown under permissive and non permissive conditions and identified 123 proteins whose level is modulated upon LptC depletion. Most such proteins belong to pathways implicated in cell envelope biogenesis, peptidoglycan remodelling, cell division and protein folding. Overall these data contribute to our understanding on how E. coli cells respond to LPS transport defects to restore outer membrane functionality.

摘要

革兰氏阴性菌的细胞包膜是一种复杂的多层结构,由内细胞质膜和一层额外的不对称脂质双层——外膜组成,外膜起到选择性渗透屏障的作用,对细菌的生存至关重要。脂多糖是位于外膜外小叶的一种必需糖脂,对外膜所表现出的特殊性质有很大贡献。这种复杂分子通过由七种必需蛋白LptABCDEFG组成的分子机器转运到细胞表面,这些蛋白形成一个跨包膜复合体并作为一个整体发挥作用。虽然最近在理解细胞包膜生物合成调控机制方面取得了进展,但关于细菌细胞如何在全球范围内应对严重的包膜生物合成缺陷的研究却很少。在这里,我们报告了基于多维蛋白质鉴定技术(MudPIT)的差异蛋白质组学的应用,以研究大肠杆菌细胞如何应对脂多糖向外膜转运的阻断。我们分析了在允许和非允许条件下生长的lptC条件突变体的包膜蛋白质组,鉴定出123种蛋白质,其水平在LptC缺失时受到调节。大多数此类蛋白质属于与细胞包膜生物合成、肽聚糖重塑、细胞分裂和蛋白质折叠相关的途径。总体而言,这些数据有助于我们理解大肠杆菌细胞如何应对LPS转运缺陷以恢复外膜功能。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/a920/4072712/38f6b5b2b0d6/pone.0100941.g001.jpg

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