Ward Elizabeth, Renault Thibaud T, Kim Eun A, Erhardt Marc, Hughes Kelly T, Blair David F
Department of Biology, University of Utah, Salt Lake City, UT, 84112, USA.
Helmholtz Centre for Infection Research, Inhoffenstr. 7, Braunschweig, 38124, Germany.
Mol Microbiol. 2018 Jan;107(1):94-103. doi: 10.1111/mmi.13870. Epub 2017 Nov 28.
During assembly of the bacterial flagellum, protein subunits that form the exterior structures are exported through a specialized secretion apparatus energized by the proton gradient. This category of protein transport, together with the similar process that occurs in the injectisomes of gram-negative pathogens, is termed type-III secretion. The membrane-embedded part of the flagellar export apparatus contains five essential proteins: FlhA, FlhB, FliP, FliQ and FliR. Here, we have undertaken a variety of experiments that together support the proposal that the protein-conducting conduit is formed primarily, and possibly entirely, by FliP. Chemical modification experiments demonstrate that positions near the center of certain FliP trans-membrane (TM) segments are accessible to polar reagents. FliP expression sensitizes cells to a number of chemical agents, and mutations at predicted channel-facing positions modulate this effect. Multiple assays are used to show that FliP suffices to form a channel that can conduct a variety of medium-sized, polar molecules. Conductance properties are strongly modulated by mutations in a methionine-rich loop that is predicted to lie at the inner mouth of the channel, which might form a gasket around cargo molecules undergoing export. The results are discussed in the framework of an hypothesis for the architecture and action of the cargo-conducting part of the type-III secretion apparatus.
在细菌鞭毛组装过程中,形成外部结构的蛋白质亚基通过由质子梯度提供能量的特殊分泌装置输出。这类蛋白质转运,连同革兰氏阴性病原体注射体中发生的类似过程,被称为III型分泌。鞭毛输出装置的膜嵌入部分包含五种必需蛋白质:FlhA、FlhB、FliP、FliQ和FliR。在这里,我们进行了一系列实验,共同支持了蛋白质传导通道主要由FliP形成且可能完全由其形成的提议。化学修饰实验表明,某些FliP跨膜(TM)片段中心附近的位置可被极性试剂接触。FliP的表达使细胞对多种化学试剂敏感,并且预测的面向通道位置的突变会调节这种效应。多种测定方法用于表明FliP足以形成一个能够传导多种中等大小极性分子的通道。电导特性受到富含甲硫氨酸的环中突变的强烈调节,该环预计位于通道的内口,可能围绕正在输出的货物分子形成一个垫圈。在关于III型分泌装置货物传导部分的结构和作用的假设框架内讨论了这些结果。