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在大肠杆菌中,菌毛的有效组装依赖于转运组装模块纳米机器。

Effective assembly of fimbriae in Escherichia coli depends on the translocation assembly module nanomachine.

机构信息

Infection &Immunity Program, Biomedicine Discovery Institute and Department of Microbiology, Monash University, Clayton 3800, Australia.

Department of Materials Engineering, Monash University, Clayton 3800, Australia.

出版信息

Nat Microbiol. 2016 May 16;1(7):16064. doi: 10.1038/nmicrobiol.2016.64.

Abstract

Outer membrane proteins are essential for Gram-negative bacteria to rapidly adapt to changes in their environment. Intricate remodelling of the outer membrane proteome is critical for bacterial pathogens to survive environmental changes, such as entry into host tissues(1-3). Fimbriae (also known as pili) are appendages that extend up to 2 μm beyond the cell surface to function in adhesion for bacterial pathogens, and are critical for virulence. The best-studied examples of fimbriae are the type 1 and P fimbriae of uropathogenic Escherichia coli, the major causative agent of urinary tract infections in humans. Fimbriae share a common mode of biogenesis, orchestrated by a molecular assembly platform called 'the usher' located in the outer membrane. Although the mechanism of pilus biogenesis is well characterized, how the usher itself is assembled at the outer membrane is unclear. Here, we report that a rapid response in usher assembly is crucially dependent on the translocation assembly module. We assayed the assembly reaction for a range of ushers and provide mechanistic insight into the β-barrel assembly pathway that enables the rapid deployment of bacterial fimbriae.

摘要

外膜蛋白对于革兰氏阴性菌快速适应环境变化至关重要。外膜蛋白组的复杂重塑对于细菌病原体在环境变化(如进入宿主组织)中存活至关重要(1-3)。菌毛(也称为纤毛)是从细胞表面伸出长达 2μm 的附属物,在细菌病原体的黏附中起作用,对于毒力至关重要。菌毛最著名的例子是尿路致病性大肠杆菌的 1 型和 P 菌毛,这是导致人类尿路感染的主要病原体。菌毛具有共同的生物发生模式,由位于外膜中的分子组装平台“usher”协调。尽管菌毛生物发生的机制已经得到很好的描述,但 usher 本身在外膜中的组装方式尚不清楚。在这里,我们报告说 usher 组装的快速反应严重依赖于易位组装模块。我们对一系列 usher 进行了组装反应测试,并为 β-桶组装途径提供了机制见解,该途径使细菌菌毛能够快速部署。

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