枯草芽孢杆菌 yqgC-sodA 操作子通过支持锰外流来保护镁依赖性酶。

IF 2.7 3区 生物学 Q3 MICROBIOLOGY
Journal of Bacteriology Pub Date : 2024-06-20 Epub Date: 2024-05-31 DOI:10.1128/jb.00052-24
Ankita J Sachla, Vijay Soni, Miguel Piñeros, Yuanchan Luo, Janice J Im, Kyu Y Rhee, John D Helmann
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引用次数: 0

摘要

微生物在其生命周期中会遇到无数压力。人们日益认识到,金属离子平衡失调是宿主与微生物相互作用的一个关键因素。细菌的金属离子平衡受到控制吸收、螯合、贩运和外流的专用金属调节剂的严格调节。在这里,我们证明,删除枯草芽孢杆菌 yqgC-sodA(YS)复合操作子,而不是删除单个基因,会导致对锰(Mn)的超敏反应。YqgC 是一种功能不明的整体膜蛋白,SodA 是一种锰依赖性超氧化物歧化酶(MnSOD)。YS 菌株的两个锰外排蛋白 MneP 和 MneS 表达量减少,这与观察到的锰敏感性一致。YS 菌株积累了高浓度的锰,增加了活性自由基(RRS),并发生了广泛的新陈代谢变化,这部分可以通过抑制镁依赖性酶来解释。虽然 YS 操作子缺失菌株和外排缺陷 mneP mneS 双突变体都会积累锰并产生类似的代谢紊乱,但它们也表现出表型差异。一些抑制 mneP mneS 外排突变体锰中毒的突变对 YS 突变体并无益处。此外,YS 突变体中的锰中毒,而不是 mneP mneS 株系中的锰中毒,可以通过表达依赖于镁的、利用络氨酸的 menaquinone、siderophore 和 tryptophan(MST)家族酶来缓解。因此,尽管 mneP mneS 和 YS 基因缺失突变体的表型相似,但它们对锰的敏感性是由不同的酶缺陷造成的。金属平衡依赖于金属吸收、储存和外排蛋白的紧密调控表达。当金属平衡受到干扰时,就会发生金属中毒,而金属中毒通常是由酶的错误金属化造成的。在枯草芽孢杆菌(Bacillus subtilis)中,锰依赖性超氧化物歧化酶(MnSOD)是最丰富的含锰蛋白,对抵抗氧化应激非常重要。在这里,我们报告了 MnSOD 和一个共同调控的膜蛋白 YqgC 在锰平衡中的新作用。MnSOD 和 YqgC 的缺失(而不是单个蛋白的缺失)会阻止锰外排蛋白的有效表达,并由于镁依赖性酶(包括利用络氨酸的关键 MST(甲萘醌、苷酸和色氨酸)家族酶)受到抑制而导致代谢组的大规模紊乱。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
The Bacillus subtilis yqgC-sodA operon protects magnesium-dependent enzymes by supporting manganese efflux.

Microbes encounter a myriad of stresses during their life cycle. Dysregulation of metal ion homeostasis is increasingly recognized as a key factor in host-microbe interactions. Bacterial metal ion homeostasis is tightly regulated by dedicated metalloregulators that control uptake, sequestration, trafficking, and efflux. Here, we demonstrate that deletion of the Bacillus subtilis yqgC-sodA (YS) complex operon, but not deletion of the individual genes, causes hypersensitivity to manganese (Mn). YqgC is an integral membrane protein of unknown function, and SodA is a Mn-dependent superoxide dismutase (MnSOD). The YS strain has reduced expression of two Mn efflux proteins, MneP and MneS, consistent with the observed Mn sensitivity. The YS strain accumulated high levels of Mn, had increased reactive radical species (RRS), and had broad metabolic alterations that can be partially explained by the inhibition of Mg-dependent enzymes. Although the YS operon deletion strain and an efflux-deficient mneP mneS double mutant both accumulate Mn and have similar metabolic perturbations, they also display phenotypic differences. Several mutations that suppressed Mn intoxication of the mneP mneS efflux mutant did not benefit the YS mutant. Further, Mn intoxication in the YS mutant, but not the mneP mneS strain, was alleviated by expression of Mg-dependent, chorismate-utilizing enzymes of the menaquinone, siderophore, and tryptophan (MST) family. Therefore, despite their phenotypic similarities, the Mn sensitivity in the mneP mneS and the YS deletion mutants results from distinct enzymatic vulnerabilities.IMPORTANCEBacteria require multiple trace metal ions for survival. Metal homeostasis relies on the tightly regulated expression of metal uptake, storage, and efflux proteins. Metal intoxication occurs when metal homeostasis is perturbed and often results from enzyme mis-metalation. In Bacillus subtilis, Mn-dependent superoxide dismutase (MnSOD) is the most abundant Mn-containing protein and is important for oxidative stress resistance. Here, we report novel roles for MnSOD and a co-regulated membrane protein, YqgC, in Mn homeostasis. Loss of both MnSOD and YqgC (but not the individual proteins) prevents the efficient expression of Mn efflux proteins and leads to a large-scale perturbation of the metabolome due to inhibition of Mg-dependent enzymes, including key chorismate-utilizing MST (menaquinone, siderophore, and tryptophan) family enzymes.

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来源期刊
Journal of Bacteriology
Journal of Bacteriology 生物-微生物学
CiteScore
6.10
自引率
9.40%
发文量
324
审稿时长
1.3 months
期刊介绍: The Journal of Bacteriology (JB) publishes research articles that probe fundamental processes in bacteria, archaea and their viruses, and the molecular mechanisms by which they interact with each other and with their hosts and their environments.
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