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TURNOVER-DEPENDENT COVALENT INACTIVATION OF Staphylococcus aureus COENZYME A-DISULFIDE REDUCTASE BY COENZYME A-MIMETICS: MECHANISTIC AND STRUCTURAL INSIGHTS

机译:金黄色葡萄球菌辅酶a二硫化还原酶BY辅酶a模拟物成交依赖的共价灭活:机械和结构洞察

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摘要

Disruption of the unusual thiol-based redox homeostasis mechanisms in Staphylococcus aureus represents a unique opportunity to identify new metabolic processes, and new targets for intervention. Targeting uncommon aspects of CoASH biosynthetic and redox functions in S. aureus, the antibiotic CJ-15,801 has recently been demonstrated to be an antimetabolite of the CoASH biosynthetic pathway in this organism; CoAS-mimetics containing α,β-unsaturated sulfone and carboxyl moieties have also been exploited as irreversible inhibitors of S. aureus coenzyme A-disulfide reductase (SaCoADR). In this work we have determined the crystal structures of three of these covalent SaCoADR-inhibitor complexes, prepared by inactivation of wild-type enzyme during turnover. The structures reveal the covalent linkage between the active-site Cys43-Sγ and Cβ of the vinyl sulfone or carboxyl moiety. The full occupancy of two inhibitor molecules per enzyme dimer, together with kinetic analyses of the wild-type/C43S heterodimer, indicates that half-sites-reactivity is not a factor during normal catalytic turnover. Further, we provide the structures of SaCoADR active-site mutants; in particular, Tyr419′-OH plays dramatic roles in directing intramolecular reduction of the Cys43-SSCoA redox center, in the redox asymmetry observed for the two FAD per dimer in NADPH titrations, and in catalysis. The two conformations observed for the Ser43 side chain in the C43S mutant structure lend support to a conformational switch for Cys43-Sγ during its catalytic Cys43-SSCoA/Cys43-SH redox cycle. Finally, the structures of the three inhibitor complexes provide a framework for design of more effective inhibitors with therapeutic potential against several major bacterial pathogens.
机译:金黄色葡萄球菌中异常的基于硫醇的氧化还原稳态机制的破坏代表了识别新的代谢过程和新的干预目标的独特机会。针对金黄色葡萄球菌中CoASH生物合成和氧化还原功能的罕见方面,最近已证明抗生素CJ-15,801是该生物中CoASH生物合成途径的抗代谢产物;含有α,β-不饱和砜和羧基的CoAS模拟物也已被用作金黄色葡萄球菌辅酶A-二硫键还原酶(SaCoADR)的不可逆抑制剂。在这项工作中,我们确定了这些共价SaCoADR抑制剂复合物中的三种的晶体结构,这些复合物是通过在转换过程中灭活野生型酶而制备的。该结构揭示了活性位点Cys43-Sγ和乙烯基砜或羧基部分的Cβ之间的共价键。每个酶二聚体两个抑制剂分子的完全占据,以及对野生型/ C43S异二聚体的动力学分析,表明半位反应性不是正常催化转换期间的一个因素。此外,我们提供了SaCoADR活性位点突变体的结构;尤其是,Tyr419'-OH在指导Cys43-SSCoA氧化还原中心的分子内还原,NADPH滴定中每个二聚体两个FAD的氧化还原不对称性和催化中起着重要作用。在其催化的Cys43-SSCoA / Cys43-SH氧化还原循环过程中,观察到的C43S突变结构中Ser43侧链的两个构象为Cys43-Sγ的构象转换提供了支持。最后,三种抑制剂复合物的结构为设计更有效的抑制剂提供了框架,该抑制剂具有针对几种主要细菌病原体的治疗潜力。

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