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Tol-Pal 在革兰氏阴性菌中的多重作用。

The multifarious roles of Tol-Pal in Gram-negative bacteria.

机构信息

Department of Biochemistry, South Parks Road, University of Oxford, Oxford OX1 3QU, UK.

出版信息

FEMS Microbiol Rev. 2020 Jul 1;44(4):490-506. doi: 10.1093/femsre/fuaa018.

Abstract

In the 1960s several groups reported the isolation and preliminary genetic mapping of Escherichia coli strains tolerant towards the action of colicins. These pioneering studies kick-started two new fields in bacteriology; one centred on how bacteriocins like colicins exploit the Tol (or more commonly Tol-Pal) system to kill bacteria, the other on the physiological role of this cell envelope-spanning assembly. The following half century has seen significant advances in the first of these fields whereas the second has remained elusive, until recently. Here, we review work that begins to shed light on Tol-Pal function in Gram-negative bacteria. What emerges from these studies is that Tol-Pal is an energised system with fundamental, interlinked roles in cell division - coordinating the re-structuring of peptidoglycan at division sites and stabilising the connection between the outer membrane and underlying cell wall. This latter role is achieved by Tol-Pal exploiting the proton motive force to catalyse the accumulation of the outer membrane peptidoglycan associated lipoprotein Pal at division sites while simultaneously mobilising Pal molecules from around the cell. These studies begin to explain the diverse phenotypic outcomes of tol-pal mutations, point to other cell envelope roles Tol-Pal may have and raise many new questions.

摘要

20 世纪 60 年代,有几个小组报道了能够耐受肠毒素作用的大肠杆菌菌株的分离和初步遗传图谱。这些开创性的研究在细菌学领域引发了两个新的领域;一个集中在细菌素(如肠毒素)如何利用 Tol(或更常见的 Tol-Pal)系统来杀死细菌,另一个则集中在这个细胞包膜跨越组件的生理作用上。在这半个世纪中,第一个领域取得了重大进展,而第二个领域直到最近才变得难以捉摸。在这里,我们回顾了一些开始阐明 Tol-Pal 在革兰氏阴性细菌中功能的工作。这些研究表明,Tol-Pal 是一个能量系统,在细胞分裂中具有基本的、相互关联的作用——协调在分裂部位重塑肽聚糖,并稳定外膜和下细胞壁之间的连接。后一个作用是通过 Tol-Pal 利用质子动力来催化在分裂部位积累与外膜肽聚糖相关的脂蛋白 Pal,同时从细胞周围动员 Pal 分子来实现的。这些研究开始解释 tol-pal 突变的不同表型结果,指出 Tol-Pal 可能具有的其他细胞包膜作用,并提出了许多新的问题。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/0078/7391070/59b86750f903/fuaa018fig1.jpg

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