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奇异变形杆菌二硫醇氧化酶DsbA与活性位点肽配体非共价结合的晶体结构。

Crystal structure of the dithiol oxidase DsbA enzyme from proteus mirabilis bound non-covalently to an active site peptide ligand.

作者信息

Kurth Fabian, Duprez Wilko, Premkumar Lakshmanane, Schembri Mark A, Fairlie David P, Martin Jennifer L

机构信息

From the Institute for Molecular Bioscience, Division of Chemistry and Structural Biology and.

Australian Infectious Diseases Research Centre, School of Chemistry and Molecular Biosciences, University of Queensland, St. Lucia, Queensland 4067, Australia.

出版信息

J Biol Chem. 2014 Jul 11;289(28):19810-22. doi: 10.1074/jbc.M114.552380. Epub 2014 May 15.

Abstract

The disulfide bond forming DsbA enzymes and their DsbB interaction partners are attractive targets for development of antivirulence drugs because both are essential for virulence factor assembly in Gram-negative pathogens. Here we characterize PmDsbA from Proteus mirabilis, a bacterial pathogen increasingly associated with multidrug resistance. PmDsbA exhibits the characteristic properties of a DsbA, including an oxidizing potential, destabilizing disulfide, acidic active site cysteine, and dithiol oxidase catalytic activity. We evaluated a peptide, PWATCDS, derived from the partner protein DsbB and showed by thermal shift and isothermal titration calorimetry that it binds to PmDsbA. The crystal structures of PmDsbA, and the active site variant PmDsbAC30S were determined to high resolution. Analysis of these structures allows categorization of PmDsbA into the DsbA class exemplified by the archetypal Escherichia coli DsbA enzyme. We also present a crystal structure of PmDsbAC30S in complex with the peptide PWATCDS. The structure shows that the peptide binds non-covalently to the active site CXXC motif, the cis-Pro loop, and the hydrophobic groove adjacent to the active site of the enzyme. This high-resolution structural data provides a critical advance for future structure-based design of non-covalent peptidomimetic inhibitors. Such inhibitors would represent an entirely new antibacterial class that work by switching off the DSB virulence assembly machinery.

摘要

形成二硫键的DsbA酶及其DsbB相互作用伙伴是开发抗毒力药物的有吸引力的靶点,因为两者对于革兰氏阴性病原体中毒力因子的组装都是必不可少的。在这里,我们对奇异变形杆菌中的PmDsbA进行了表征,奇异变形杆菌是一种越来越多地与多重耐药性相关的细菌病原体。PmDsbA具有DsbA的特征性质,包括氧化电位、不稳定的二硫键、酸性活性位点半胱氨酸和二硫醇氧化酶催化活性。我们评估了一种源自伴侣蛋白DsbB的肽PWATCDS,并通过热位移和等温滴定量热法表明它与PmDsbA结合。PmDsbA以及活性位点变体PmDsbAC30S的晶体结构被测定到高分辨率。对这些结构的分析使PmDsbA能够被归类到以原型大肠杆菌DsbA酶为代表的DsbA类别中。我们还展示了PmDsbAC30S与肽PWATCDS复合物的晶体结构。该结构表明,该肽非共价结合到酶活性位点的CXXC基序、顺式脯氨酸环以及与活性位点相邻的疏水凹槽。这种高分辨率的结构数据为未来基于结构的非共价拟肽抑制剂设计提供了关键进展。此类抑制剂将代表一种全新的抗菌类别,其作用方式是关闭DSB毒力组装机制。

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