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对食菌蛭弧菌基因组中编码的转运蛋白的综合分析。

Comprehensive analysis of transport proteins encoded within the genome of Bdellovibrio bacteriovorus.

作者信息

Barabote Ravi D, Rendulic Snjezana, Schuster Stephan C, Saier Milton H

机构信息

Division of Biological Sciences, University of California at San Diego, La Jolla, CA 92093-0116, USA.

出版信息

Genomics. 2007 Oct;90(4):424-46. doi: 10.1016/j.ygeno.2007.06.002. Epub 2007 Aug 15.

Abstract

Bdellovibrio bacteriovorus is a bacterial parasite with an unusual lifestyle. It grows and reproduces in the periplasm of a host prey bacterium. The complete genome sequence of B. bacteriovorus has recently been reported. We have reanalyzed the transport proteins encoded within the B. bacteriovorus genome according to the current content of the Transporter Classification Database. A comprehensive analysis is given on the types and numbers of transport systems that B. bacteriovorus has. In this regard, the potential protein secretory capabilities of at least four types of inner-membrane secretion systems and five types of outer-membrane secretion systems are described. Surprisingly, B. bacteriovorus has a disproportionate percentage of cytoplasmic membrane channels and outer-membrane porins. It has far more TonB/ExbBD-type systems and MotAB-type systems for energizing outer-membrane transport and motility than does Escherichia coli. Analysis of probable substrate specificities of its transporters provides clues to its metabolic preferences. Interesting examples of gene fusions and of potentially overlapping genes are also noted. Our analyses provide a comprehensive, detailed appreciation of the transport capabilities of B. bacteriovorus. They should serve as a guide for functional experimental analyses.

摘要

食菌蛭弧菌是一种具有独特生活方式的细菌寄生虫。它在宿主猎物细菌的周质中生长和繁殖。最近报道了食菌蛭弧菌的完整基因组序列。我们已根据转运蛋白分类数据库的当前内容,对食菌蛭弧菌基因组中编码的转运蛋白进行了重新分析。对食菌蛭弧菌拥有的转运系统的类型和数量进行了全面分析。在这方面,描述了至少四种内膜分泌系统和五种外膜分泌系统的潜在蛋白质分泌能力。令人惊讶的是,食菌蛭弧菌的细胞质膜通道和外膜孔蛋白的比例失调。与大肠杆菌相比,它具有更多用于为外膜转运和运动提供能量的TonB/ExbBD型系统和MotAB型系统。对其转运蛋白可能的底物特异性进行分析,为其代谢偏好提供了线索。还注意到了基因融合和潜在重叠基因方面的有趣例子。我们的分析全面、详细地评估了食菌蛭弧菌的转运能力。它们应可作为功能实验分析的指南。

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