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二聚化在大肠杆菌二硫键异构酶DsbC催化特性中的作用

Role of dimerization in the catalytic properties of the Escherichia coli disulfide isomerase DsbC.

作者信息

Arredondo Silvia A, Chen Tiffany F, Riggs Austen F, Gilbert Hiram F, Georgiou George

机构信息

Department of Chemical Engineering, School of Biological Sciences, University of Texas, Austin, Texas 78712, USA.

出版信息

J Biol Chem. 2009 Sep 4;284(36):23972-9. doi: 10.1074/jbc.M109.010199. Epub 2009 Jul 6.

Abstract

The bacterial protein-disulfide isomerase DsbC is a homodimeric V-shaped enzyme that consists of a dimerization domain, two alpha-helical linkers, and two opposing thioredoxin fold catalytic domains. The functional significance of the two catalytic domains of DsbC is not well understood yet. We have engineered heterodimer-like DsbC derivatives covalently linked via (Gly(3)-Ser) flexible linkers. We either inactivated one of the catalytic sites (CGYC), or entirely removed one of the catalytic domains while maintaining the putative binding area intact. Variants having a single active catalytic site display significant levels of isomerase activity. Furthermore, mDsbC[H45D]-dim[D53H], a DsbC variant lacking an entire catalytic domain but with an intact dimerization domain, also showed isomerase activity, albeit at lower levels. In addition, the absence of the catalytic domain allowed this protein to catalyze in vivo oxidation. Our results reveal that two catalytic domains in DsbC are not essential for disulfide bond isomerization and that a determining feature in isomerization is the availability of a substrate binding domain.

摘要

细菌蛋白二硫键异构酶DsbC是一种同型二聚体V形酶,由一个二聚化结构域、两个α-螺旋连接区和两个相对的硫氧还蛋白折叠催化结构域组成。DsbC两个催化结构域的功能意义尚未完全明确。我们通过(Gly(3)-Ser)柔性连接子构建了共价连接的类异源二聚体DsbC衍生物。我们要么使其中一个催化位点(CGYC)失活,要么在保持假定结合区域完整的同时完全去除其中一个催化结构域。具有单个活性催化位点的变体表现出显著水平的异构酶活性。此外,mDsbC[H45D]-dim[D53H],一种缺少整个催化结构域但二聚化结构域完整的DsbC变体,也表现出异构酶活性,尽管活性水平较低。此外,催化结构域的缺失使该蛋白能够在体内催化氧化反应。我们的结果表明,DsbC中的两个催化结构域对于二硫键异构化并非必不可少,而异构化的一个决定性特征是底物结合结构域的可用性。

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