Suppr超能文献

包膜中羟自由基的过度产生:肽聚糖合成的阿喀琉斯之踵。

Hydroxyl Radical Overproduction in the Envelope: an Achilles' Heel in Peptidoglycan Synthesis.

机构信息

Département de Microbiologie, Infectiologie et Immunologie, Faculté de Médecine, Université de Montréal, Montréal, Québec, Canada.

Molecular Infection Medicine Sweden, Umea University, Umeå, Sweden.

出版信息

Microbiol Spectr. 2022 Feb 23;10(1):e0120321. doi: 10.1128/spectrum.01203-21. Epub 2022 Feb 16.

Abstract

While many mechanisms governing bacterial envelope homeostasis have been identified, others remain poorly understood. To decipher these processes, we previously developed an assay in the Gram-negative model Escherichia coli to identify genes involved in maintenance of envelope integrity. One such gene was ElyC, which was shown to be required for envelope integrity and peptidoglycan synthesis at room temperature. ElyC is predicted to be an integral inner membrane protein with a highly conserved domain of unknown function (DUF218). In this study, and stemming from a further characterization of the role of ElyC in maintaining cell envelope integrity, we serendipitously discovered an unappreciated form of oxidative stress in the bacterial envelope. We found that cells lacking ElyC overproduce hydroxyl radicals (HO) in their envelope compartment and that HO overproduction is directly or indirectly responsible for the peptidoglycan synthesis arrest, cell envelope integrity defects, and cell lysis of the Δ mutant. Consistent with these observations, we show that the Δ mutant defect is suppressed during anaerobiosis. HO is known to cause DNA damage but to our knowledge has not been shown to interfere with peptidoglycan synthesis. Thus, our work implicates oxidative stress as an important stressor in the bacterial cell envelope and opens the door to future studies deciphering the mechanisms that render peptidoglycan synthesis sensitive to oxidative stress. Oxidative stress is caused by the production and excessive accumulation of oxygen reactive species. In bacterial cells, oxidative stress mediated by hydroxyl radicals is typically associated with DNA damage in the cytoplasm. Here, we reveal the existence of a pathway for oxidative stress in the envelope of Gram-negative bacteria. Stemming from the characterization of a poorly characterized gene, we found that HO overproduction specifically in the envelope compartment causes inhibition of peptidoglycan synthesis and eventually bacterial cell lysis.

摘要

虽然已经确定了许多调节细菌包膜稳态的机制,但其他机制仍知之甚少。为了解析这些过程,我们之前在革兰氏阴性模型大肠杆菌中开发了一种测定法,以鉴定与维持包膜完整性相关的基因。其中一个基因是 ElyC,它被证明在室温下对包膜完整性和肽聚糖合成是必需的。ElyC 被预测为一种完整的内膜蛋白,具有高度保守的未知功能结构域(DUF218)。在这项研究中,并且源自 ElyC 在维持细胞包膜完整性中的作用的进一步表征,我们偶然发现了细菌包膜中一种未被认识到的氧化应激形式。我们发现,缺乏 ElyC 的细胞在其包膜隔室中过度产生羟基自由基(HO),并且 HO 的过度产生直接或间接导致肽聚糖合成停滞、包膜完整性缺陷和 Δ突变体的细胞裂解。与这些观察结果一致,我们表明,在厌氧条件下,Δ突变体缺陷被抑制。HO 已知会导致 DNA 损伤,但据我们所知,它并未显示会干扰肽聚糖合成。因此,我们的工作表明氧化应激是细菌细胞包膜的一个重要应激源,并为未来阐明使肽聚糖合成对氧化应激敏感的机制的研究开辟了道路。氧化应激是由氧活性物质的产生和过度积累引起的。在细菌细胞中,由羟基自由基介导的氧化应激通常与细胞质中的 DNA 损伤相关。在这里,我们揭示了革兰氏阴性细菌包膜中存在氧化应激途径。源自对一个特征不明确的基因的表征,我们发现 HO 仅在包膜隔室中过度产生会导致肽聚糖合成抑制,最终导致细菌细胞裂解。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/5b06/8849086/c5aa849154d8/spectrum.01203-21-f001.jpg

文献AI研究员

20分钟写一篇综述,助力文献阅读效率提升50倍。

立即体验

用中文搜PubMed

大模型驱动的PubMed中文搜索引擎

马上搜索

文档翻译

学术文献翻译模型,支持多种主流文档格式。

立即体验