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探究专一性 NO 传感器 [4Fe-4S] NsrR 的作用机制:簇配体环境的影响。

Probing the mechanism of the dedicated NO sensor [4Fe-4S] NsrR: the effect of cluster ligand environment.

机构信息

Centre for Molecular and Structural Biochemistry, School of Chemistry, University of East Anglia, Norwich Research Park, Norwich NR4 7TJ, UK.

Centre for Molecular and Structural Biochemistry, School of Chemistry, University of East Anglia, Norwich Research Park, Norwich NR4 7TJ, UK.

出版信息

J Inorg Biochem. 2024 Mar;252:112457. doi: 10.1016/j.jinorgbio.2023.112457. Epub 2023 Dec 21.

DOI:10.1016/j.jinorgbio.2023.112457
PMID:38176366
Abstract

NsrR from Streptomyces coelicolor is a bacterial nitric oxide (NO) sensor/nitrosative stress regulator as its primary function, and has been shown to have differential response at low, mid, and high levels of NO. These must correspond to discrete structural changes at the protein-bound [4Fe-4S] cluster in response to stepwise nitrosylation of the cluster. We have investigated the effect of the monohapto carboxylate ligand in the site differentiated [4Fe-4S] cluster cofactor of the protein NsrR on modulating its reactivity to NO with a focus on indentifying mechanistic intermediates. We have prepared a synthetic model [4Fe-4S] cluster complex with tripodal ligand and one single site differentiated site occupied by either thiolate or carboxylate ligand. We report here the mechanistic details of sequential steps of nitrosylation as observed by ESI MS and IR spectroscopy. Parallel non-denaturing mass spectrometry analyses were performed using site-differentiated variants of NsrR with the native aspartic acid, cysteine, or alanine in the position of the forth ligand to the cluster. A mono-nitrosylated synthetic [4Fe-4S] cluster was observed for the first time in a biologically-relevant thiolate-based coordination environment. Combined synthetic and protein data give unprecedented clarity in the modulation of nitrosylation of a [4Fe-4S] cluster.

摘要

来自链霉菌的 NsrR 是一种细菌一氧化氮(NO)传感器/硝化应激调节剂,作为其主要功能,并且已经显示出在低、中、高水平的 NO 下具有不同的反应。这些反应必须对应于蛋白结合的 [4Fe-4S] 簇中的离散结构变化,以响应逐步硝化的簇。我们研究了蛋白 NsrR 中位点区分的 [4Fe-4S] 簇辅因子中单齿羧酸盐配体对调节其对 NO 反应性的影响,重点是确定机制中间体。我们已经制备了具有三脚架配体和一个单一位点区分的位点的合成 [4Fe-4S] 簇配合物,该位点由硫醇或羧酸盐配体占据。我们在这里报告了通过 ESI-MS 和 IR 光谱观察到的硝化顺序步骤的机制细节。使用位于簇第四位的天冬氨酸、半胱氨酸或丙氨酸的天然氨基酸的 NsrR 位点区分变体进行平行非变性质谱分析。首次在生物相关的硫醇基配位环境中观察到单硝化合成 [4Fe-4S] 簇。综合合成和蛋白质数据在调节 [4Fe-4S] 簇的硝化方面提供了前所未有的清晰度。

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Probing the mechanism of the dedicated NO sensor [4Fe-4S] NsrR: the effect of cluster ligand environment.探究专一性 NO 传感器 [4Fe-4S] NsrR 的作用机制:簇配体环境的影响。
J Inorg Biochem. 2024 Mar;252:112457. doi: 10.1016/j.jinorgbio.2023.112457. Epub 2023 Dec 21.
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Mycobacterium tuberculosis WhiB3 responds to O2 and nitric oxide via its [4Fe-4S] cluster and is essential for nutrient starvation survival.结核分枝杆菌WhiB3通过其[4Fe-4S]簇对氧气和一氧化氮作出反应,并且对于营养饥饿存活至关重要。
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Metallomics. 2025 Aug 5;17(8). doi: 10.1093/mtomcs/mfaf026.
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Binding of a single nitric oxide molecule is sufficient to disrupt DNA binding of the nitrosative stress regulator NsrR.单个一氧化氮分子的结合足以破坏亚硝化应激调节因子NsrR的DNA结合。
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Iron-sulfur protein odyssey: exploring their cluster functional versatility and challenging identification.
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Metallomics. 2024 May 2;16(5). doi: 10.1093/mtomcs/mfae025.