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肽聚糖内肽酶调控的结构基础。

Structural basis of peptidoglycan endopeptidase regulation.

机构信息

Weill Institute for Cell and Molecular Biology, Cornell University, Ithaca, NY 14853.

Department of Biological Chemistry, University of Michigan, Ann Arbor, MI 48109-5606.

出版信息

Proc Natl Acad Sci U S A. 2020 May 26;117(21):11692-11702. doi: 10.1073/pnas.2001661117. Epub 2020 May 11.

Abstract

Most bacteria surround themselves with a cell wall, a strong meshwork consisting primarily of the polymerized aminosugar peptidoglycan (PG). PG is essential for structural maintenance of bacterial cells, and thus for viability. PG is also constantly synthesized and turned over; the latter process is mediated by PG cleavage enzymes, for example, the endopeptidases (EPs). EPs themselves are essential for growth but also promote lethal cell wall degradation after exposure to antibiotics that inhibit PG synthases (e.g., β-lactams). Thus, EPs are attractive targets for novel antibiotics and their adjuvants. However, we have a poor understanding of how these enzymes are regulated in vivo, depriving us of novel pathways for the development of such antibiotics. Here, we have solved crystal structures of the LysM/M23 family peptidase ShyA, the primary EP of the cholera pathogen Our data suggest that ShyA assumes two drastically different conformations: a more open form that allows for substrate binding and a closed form, which we predicted to be catalytically inactive. Mutations expected to promote the open conformation caused enhanced activity in vitro and in vivo, and these results were recapitulated in EPs from the divergent pathogens and Our results suggest that LysM/M23 EPs are regulated via release of the inhibitory Domain 1 from the M23 active site, likely through conformational rearrangement in vivo.

摘要

大多数细菌都被细胞壁所包围,细胞壁是一个由聚合的氨基糖肽聚糖(PG)组成的强大网格。PG 对细菌细胞的结构维持至关重要,因此对其生存能力也很重要。PG 也在不断地合成和更新;这个过程由 PG 裂解酶介导,例如内肽酶(EPs)。EPs 本身对生长是必需的,但在暴露于抑制 PG 合成酶的抗生素(例如β-内酰胺类抗生素)后,也会促进致命的细胞壁降解。因此,EPs 是新型抗生素及其佐剂的有吸引力的靶标。然而,我们对这些酶在体内是如何被调控的知之甚少,这使我们无法开发出新型的抗生素发展途径。在这里,我们解析了霍乱病原体主要内肽酶 ShyA 的 LysM/M23 家族肽酶的晶体结构。我们的数据表明,ShyA 呈现出两种截然不同的构象:一种更开放的构象,允许底物结合,和一种我们预测为无催化活性的封闭构象。预计能促进开放构象的突变导致体外和体内活性增强,并且在来自不同病原体 和 的 EPs 中也得到了重现。我们的结果表明,LysM/M23 EPs 通过从 M23 活性位点释放抑制性结构域 1 来进行调控,可能通过体内的构象重排来实现。

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