周质间隙
蛋氨酸亚砜
蛋氨酸亚砜还原酶
生物化学
蛋氨酸
生物
大肠杆菌
氧化还原
铜
活性氧
细胞生物学
生物物理学
化学
氨基酸
基因
有机化学
作者
Alexandra Vergnes,Camille Henry,Gaia Grassini,Laurent Loiseau,Sara El Hajj,Yann Denis,Anne Galinier,Didier Vertommen,Laurent Aussel,Benjamin Ezraty
出处
期刊:PLOS Genetics
[Public Library of Science]
日期:2022-07-11
卷期号:18 (7): e1010180-e1010180
被引量:10
标识
DOI:10.1371/journal.pgen.1010180
摘要
Methionine residues are particularly sensitive to oxidation by reactive oxygen or chlorine species (ROS/RCS), leading to the appearance of methionine sulfoxide in proteins. This post-translational oxidation can be reversed by omnipresent protein repair pathways involving methionine sulfoxide reductases (Msr). In the periplasm of Escherichia coli, the enzymatic system MsrPQ, whose expression is triggered by the RCS, controls the redox status of methionine residues. Here we report that MsrPQ synthesis is also induced by copper stress via the CusSR two-component system, and that MsrPQ plays a role in copper homeostasis by maintaining the activity of the copper efflux pump, CusCFBA. Genetic and biochemical evidence suggest the metallochaperone CusF is the substrate of MsrPQ and our study reveals that CusF methionines are redox sensitive and can be restored by MsrPQ. Thus, the evolution of a CusSR-dependent synthesis of MsrPQ allows conservation of copper homeostasis under aerobic conditions by maintenance of the reduced state of Met residues in copper-trafficking proteins.
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