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PBP2中一个保守的锌结合位点是伸长体导向的细菌细胞形状所必需的。

A conserved zinc-binding site in PBP2 required for elongasome-directed bacterial cell shape.

作者信息

Micelli Carmina, Dai Yunfei, Raustad Nicole, Isberg Ralph R, Dowson Christopher G, Lloyd Adrian J, Geisinger Edward, Crow Allister, Roper David I

机构信息

School of Life Sciences, University of Warwick, Coventry CV4 7AL, United Kingdom.

Department of Biology, Northeastern University, Boston, MA 02115.

出版信息

Proc Natl Acad Sci U S A. 2023 Feb 21;120(8):e2215237120. doi: 10.1073/pnas.2215237120. Epub 2023 Feb 14.

Abstract

is a gram-negative bacterial pathogen that causes challenging nosocomial infections. β-lactam targeting of penicillin-binding protein (PBP)-mediated cell wall peptidoglycan (PG) formation is a well-established antimicrobial strategy. Exposure to carbapenems or zinc (Zn)-deprived growth conditions leads to a rod-to-sphere morphological transition in , an effect resembling that caused by deficiency in the RodA-PBP2 PG synthesis complex required for cell wall elongation. While it is recognized that carbapenems preferentially acylate PBP2 in and therefore block the transpeptidase function of the RodA-PBP2 system, the molecular details underpinning cell wall elongation inhibition upon Zn starvation remain undefined. Here, we report the X-ray crystal structure of PBP2, revealing an unexpected Zn coordination site in the transpeptidase domain required for protein stability. Mutations in the Zn-binding site of PBP2 cause a loss of bacterial rod shape and increase susceptibility to β-lactams, therefore providing a direct rationale for cell wall shape maintenance and Zn homeostasis in . Furthermore, the Zn-coordinating residues are conserved in various β- and γ-proteobacterial PBP2 orthologs, consistent with a widespread Zn-binding requirement for function that has been previously unknown. Due to the emergence of resistance to virtually all marketed antibiotic classes, alternative or complementary antimicrobial strategies need to be explored. These findings offer a perspective for dual inhibition of Zn-dependent PG synthases and metallo-β-lactamases by metal chelating agents, considered the most sought-after adjuvants to restore β-lactam potency against gram-negative bacteria.

摘要

是一种革兰氏阴性细菌病原体,可引起具有挑战性的医院感染。针对青霉素结合蛋白(PBP)介导的细胞壁肽聚糖(PG)形成的β-内酰胺靶向是一种成熟的抗菌策略。暴露于碳青霉烯类药物或锌(Zn)缺乏的生长条件下会导致其从杆状转变为球状形态,这种效应类似于细胞壁伸长所需的RodA-PBP2 PG合成复合物缺乏所引起的效应。虽然人们认识到碳青霉烯类药物优先使中的PBP2酰化,从而阻断RodA-PBP2系统的转肽酶功能,但锌饥饿时细胞壁伸长抑制的分子细节仍不明确。在这里,我们报告了的PBP2的X射线晶体结构,揭示了转肽酶结构域中一个意想不到的锌配位位点,该位点对于蛋白质稳定性是必需的。PBP2锌结合位点的突变会导致细菌杆状形态丧失,并增加对β-内酰胺类药物的敏感性,因此为中细胞壁形状维持和锌稳态提供了直接的理论依据。此外,锌配位残基在各种β-和γ-变形菌的PBP2直系同源物中是保守的,这与先前未知的广泛的功能锌结合需求一致。由于几乎所有市售抗生素类别的耐药性都在出现,需要探索替代或补充抗菌策略。这些发现为金属螯合剂对锌依赖性PG合成酶和金属β-内酰胺酶的双重抑制提供了一个视角,金属螯合剂被认为是恢复β-内酰胺对革兰氏阴性菌效力最受追捧的佐剂。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/2076/9974482/51fadd9f40fc/pnas.2215237120fig01.jpg

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