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蛋白质中广泛存在共价赖氨酸-半胱氨酸氧化还原开关。

Widespread occurrence of covalent lysine-cysteine redox switches in proteins.

机构信息

Department of Molecular Enzymology, Göttingen Center of Molecular Biosciences, Georg-August University Göttingen, Göttingen, Germany.

Department of Structural Dynamics, Max-Planck-Institute for Biophysical Chemistry, Göttingen, Germany.

出版信息

Nat Chem Biol. 2022 Apr;18(4):368-375. doi: 10.1038/s41589-021-00966-5. Epub 2022 Feb 14.

Abstract

We recently reported the discovery of a lysine-cysteine redox switch in proteins with a covalent nitrogen-oxygen-sulfur (NOS) bridge. Here, a systematic survey of the whole protein structure database discloses that NOS bridges are ubiquitous redox switches in proteins of all domains of life and are found in diverse structural motifs and chemical variants. In several instances, lysines are observed in simultaneous linkage with two cysteines, forming a sulfur-oxygen-nitrogen-oxygen-sulfur (SONOS) bridge with a trivalent nitrogen, which constitutes an unusual native branching cross-link. In many proteins, the NOS switch contains a functionally essential lysine with direct roles in enzyme catalysis or binding of substrates, DNA or effectors, linking lysine chemistry and redox biology as a regulatory principle. NOS/SONOS switches are frequently found in proteins from human and plant pathogens, including severe acute respiratory syndrome coronavirus 2 (SARS-CoV-2), and also in many human proteins with established roles in gene expression, redox signaling and homeostasis in physiological and pathophysiological conditions.

摘要

我们最近报道了在具有共价氮氧硫 (NOS) 桥的蛋白质中发现赖氨酸-半胱氨酸氧化还原开关。在这里,对整个蛋白质结构数据库进行了系统调查,揭示了 NOS 桥在所有生命领域的蛋白质中无处不在的氧化还原开关,并存在于不同的结构模体和化学变体中。在某些情况下,赖氨酸同时与两个半胱氨酸相连,形成带有三价氮的硫-氧-氮-氧-硫 (SONOS) 桥,这构成了一种不寻常的天然分支交联。在许多蛋白质中,NOS 开关包含一个功能必需的赖氨酸,它在酶催化或底物、DNA 或效应物的结合中发挥直接作用,将赖氨酸化学和氧化还原生物学联系起来作为一种调节原则。NOS/SONOS 开关经常在人类和植物病原体的蛋白质中被发现,包括严重急性呼吸综合征冠状病毒 2 (SARS-CoV-2),也在许多在生理和病理生理条件下在基因表达、氧化还原信号和动态平衡中具有既定作用的人类蛋白质中被发现。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/8ca2/8964421/34085f0b2e47/41589_2021_966_Fig1_HTML.jpg

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