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分析芽孢杆菌属种在孢子形成和孢子中辅酶 A 与蛋白半胱氨酸巯基之间的二硫键连接。

Analysis of disulphide bond linkage between CoA and protein cysteine thiols during sporulation and in spores of Bacillus species.

机构信息

Department of Structural and Molecular Biology, University College London, Gower St., London WC1E 6BT, UK.

Biological Mass Spectrometry & Proteomics Cell Biology, MRC Laboratory of Molecular Biology, Francis Crick Avenue, Trumpington, Cambridge CB2 0QH, UK.

出版信息

FEMS Microbiol Lett. 2020 Dec 22;367(23). doi: 10.1093/femsle/fnaa174.

Abstract

Spores of Bacillus species have novel properties, which allow them to lie dormant for years and then germinate under favourable conditions. In the current work, the role of a key metabolic integrator, coenzyme A (CoA), in redox regulation of growing cells and during spore formation in Bacillus megaterium and Bacillus subtilis is studied. Exposing these growing cells to oxidising agents or carbon deprivation resulted in extensive covalent protein modification by CoA (termed protein CoAlation), through disulphide bond formation between the CoA thiol group and a protein cysteine. Significant protein CoAlation was observed during sporulation of B. megaterium, and increased largely in parallel with loss of metabolism in spores. Mass spectrometric analysis identified four CoAlated proteins in B. subtilis spores as well as one CoAlated protein in growing B. megaterium cells. All five of these proteins have been identified as moderately abundant in spores. Based on these findings and published studies, protein CoAlation might be involved in facilitating establishment of spores' metabolic dormancy, and/or protecting sensitive sulfhydryl groups of spore enzymes.

摘要

芽孢杆菌属的孢子具有新颖的特性,使其能够休眠数年,然后在有利条件下发芽。在当前的工作中,研究了辅酶 A(CoA)在芽孢杆菌属和枯草芽孢杆菌生长细胞的氧化还原调节以及孢子形成过程中的关键代谢整合子的作用。将这些生长细胞暴露于氧化剂或碳源剥夺会导致 CoA(称为蛋白质 CoAlation)通过 CoA 巯基与蛋白质半胱氨酸之间的二硫键形成对大量共价蛋白质进行修饰。在芽孢杆菌属的孢子形成过程中观察到显著的蛋白质 CoAlation,并且与孢子中代谢的丧失基本上平行增加。质谱分析鉴定了枯草芽孢杆菌孢子中的 4 种 CoAlated 蛋白以及生长的芽孢杆菌属细胞中的 1 种 CoAlated 蛋白。这 5 种蛋白质均被鉴定为孢子中含量中等丰富的蛋白质。基于这些发现和已发表的研究,蛋白质 CoAlation 可能参与促进孢子代谢休眠的建立,和/或保护孢子酶的敏感巯基基团。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/ea07/8127865/b2f970601129/fnaa174fig1.jpg

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