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首页> 外文期刊>Molecular & cellular proteomics: MCP >Integrated Succinylome and Metabolome Profiling Reveals Crucial Role of S-Ribosylhomocysteine Lyase in Quorum Sensing and Metabolism of Aeromonas hydrophila
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Integrated Succinylome and Metabolome Profiling Reveals Crucial Role of S-Ribosylhomocysteine Lyase in Quorum Sensing and Metabolism of Aeromonas hydrophila

机译:整合的琥珀杂物和代谢物分析揭示了S-核糖基肌细胞裂解酶在Aeromonas疏水中的批量传感和代谢中的关键作用

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摘要

Protein modification by lysine succinylation is a newly identified post-translational modification (PTM) of lysine residues and plays an important role in diverse physiological functions, although their associated biological characteristics are still largely unknown. Here, we investigated the effects of lysine succinylation on the physiological regulation within a well-known fish pathogen, Aeromonas hydrophila. A high affinity purification method was used to enrich peptides with lysine succinylation in A. hydrophila ATCC 7966, and a total of 2,174 lysine succinylation sites were identified on 666 proteins using LC-MS/MS. Gene ontology analysis indicated that these succinylated proteins are involved in diverse metabolic pathways and biological processes, including translation, protein export, and central metabolic pathways. The modifications of several selected candidates were further validated by Western blotting. Using site-directed mutagenesis, we observed that the succinylation of lysines on S-ribosylhomocysteine lyase (LuxS) at the K23 and K30 sites positively regulate the production of the quorum sensing autoinducer AI-2, and that these PTMs ultimately alter its competitiveness with another pathogen, Vibrio alginolyticus. Moreover, subsequent metabolomic analyses indicated that K30 succinylation on LuxS may suppress the activated methyl cycle (AMC) and that both the K23 and K30 sites are involved in amino acid metabolism. Taken together, the results from this study provide significant insights into the functions of lysine succinylation and its critical roles on LuxS in regulating the cellular physiology of A.
机译:通过赖氨酸琥珀酰化的蛋白质改性是新鉴定的赖氨酸残基的翻译后修饰(PTM),并且在不同的生理功能中起重要作用,尽管它们相关的生物学特性仍然很大程度上是未知的。在这里,我们研究了赖氨酸琥珀酰化对众所周知的鱼病原菌内的生理调控的影响,Aeromonas疏水液。使用高亲和力纯化方法在A.疏水层ATCC 7966中富含赖氨酸琥珀酰化的肽,并在666个蛋白质中使用LC-MS / MS鉴定了总共2,174个赖氨酸琥珀酰化位点。基因本体学分析表明,这些琥珀酰化的蛋白质涉及不同的代谢途径和生物过程,包括翻译,蛋白质出口和中枢代谢途径。 Western印迹进一步验证了几种选定候选者的修饰。使用现场导向的诱变,观察到K23和K30位点上的S-核糖基肌细胞内裂解酶(LUX)上的赖氨酸琥珀酰化积极调节Quorum感应的自动挤出机AI-2的产生,并且这些PTM最终改变了另一个人的竞争力病原体,vibrio algolyticus。此外,随后的代谢分析表明,Luxs上的K30琥珀酰化可以抑制活化的甲基循环(AMC),并且K23和K30位点均参与氨基酸代谢。在一起,本研究的结果为赖氨酸琥珀酰化的功能提供了显着的见解及其对规范A细胞生理学的Luxs的危重作用。

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    Fujian Agr &

    Forestry Univ Sch Life Sci Fujian Prov Key Lab Agroecol Proc &

    Safety Monito Fuzhou;

    Fujian Agr &

    Forestry Univ Sch Life Sci Fujian Prov Key Lab Agroecol Proc &

    Safety Monito Fuzhou;

    Fujian Agr &

    Forestry Univ Sch Life Sci Fujian Prov Key Lab Agroecol Proc &

    Safety Monito Fuzhou;

    Fujian Agr &

    Forestry Univ Sch Life Sci Fujian Prov Key Lab Agroecol Proc &

    Safety Monito Fuzhou;

    Fujian Agr &

    Forestry Univ Sch Life Sci Fujian Prov Key Lab Agroecol Proc &

    Safety Monito Fuzhou;

    Fujian Agr &

    Forestry Univ Sch Life Sci Fujian Prov Key Lab Agroecol Proc &

    Safety Monito Fuzhou;

    Fujian Agr &

    Forestry Univ Sch Life Sci Fujian Prov Key Lab Agroecol Proc &

    Safety Monito Fuzhou;

    Fujian Agr &

    Forestry Univ Sch Life Sci Fujian Prov Key Lab Agroecol Proc &

    Safety Monito Fuzhou;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 生物化学;
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