首页> 美国卫生研究院文献>The Journal of Biological Chemistry >Real-time Monitoring of Intermediates Reveals the Reaction Pathway in the Thiol-Disulfide Exchange between Disulfide Bond Formation Protein A (DsbA) and B (DsbB) on a Membrane-immobilized Quartz Crystal Microbalance (QCM) System
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Real-time Monitoring of Intermediates Reveals the Reaction Pathway in the Thiol-Disulfide Exchange between Disulfide Bond Formation Protein A (DsbA) and B (DsbB) on a Membrane-immobilized Quartz Crystal Microbalance (QCM) System

机译:中间体的实时监控揭示了膜固定石英晶体微天平(QCM)系统上二硫键形成蛋白A(DsbA)和B(DsbB)之间硫醇-二硫键交换中的反应途径

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摘要

Disulfide bond formation protein B (DsbBS-S,S-S) is an inner membrane protein in Escherichia coli that has two disulfide bonds (S-S, S-S) that play a role in oxidization of a pair of cysteine residues (SH, SH) in disulfide bond formation protein A (DsbASH,SH). The oxidized DsbAS-S, with one disulfide bond (S-S), can oxidize proteins with SH groups for maturation of a folding preprotein. Here, we have described the transient kinetics of the oxidation reaction between DsbASH,SH and DsbBS-S,S-S. We immobilized DsbBS-S,S-S embedded in lipid bilayers on the surface of a 27-MHz quartz crystal microbalance (QCM) device to detect both formation and degradation of the reaction intermediate (DsbA-DsbB), formed via intermolecular disulfide bonds, as a mass change in real time. The obtained kinetic parameters (intermediate formation, reverse, and oxidation rate constants (kf, kr, and kcat, respectively) indicated that the two pairs of cysteine residues in DsbBS-S,S-S were more important for the stability of the DsbA-DsbB intermediate than ubiquinone, an electron acceptor for DsbBS-S,S-S. Our data suggested that the reaction pathway of almost all DsbASH,SH oxidation processes would proceed through this stable intermediate, avoiding the requirement for ubiquinone.
机译:二硫键形成蛋白B(DsbBS-S,SS)是大肠杆菌中的内膜蛋白,具有两个二硫键(SS,SS),它们在二硫键中的一对半胱氨酸残基(SH,SH)的氧化中起作用形成蛋白A(DsbASH,SH)。具有一个二硫键(S-S)的被氧化的DsbAS-S可以氧化具有SH基团的蛋白质,从而使折叠的前蛋白质成熟。在这里,我们描述了DsbASH,SH和DsbBS-S,S-S之间的氧化反应的瞬态动力学。我们将DsbBS-S,SS固定在27 MHz石英晶体微天平(QCM)装置表面的脂质双层中,以检测通过分子间二硫键形成的反应中间体(DsbA-DsbB)的形成和降解。实时进行大规模更改。获得的动力学参数(中间体形成,反向和氧化速率常数(分别为kf,kr和kcat)表明,DsbBS-S,SS中的两对半胱氨酸残基对DsbA-DsbB中间体的稳定性更重要我们的数据表明,几乎所有DsbASH,SH氧化过程的反应途径都将通过这种稳定的中间体进行,从而避免了对泛醌的需求。

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