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恰菲埃立克体硫氧还蛋白氧化态和还原态的溶液核磁共振结构:由于主链动力学导致的核磁共振不可见结构。

Solution NMR structures of oxidized and reduced Ehrlichia chaffeensis thioredoxin: NMR-invisible structure owing to backbone dynamics.

作者信息

Buchko Garry W, Hewitt Stephen N, Van Voorhis Wesley C, Myler Peter J

机构信息

Seattle Structural Genomics Center for Infectious Disease, USA.

出版信息

Acta Crystallogr F Struct Biol Commun. 2018 Jan 1;74(Pt 1):46-56. doi: 10.1107/S2053230X1701799X.

DOI:10.1107/S2053230X1701799X
PMID:29372907
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC5947692/
Abstract

Thioredoxins are small ubiquitous proteins that participate in a diverse variety of redox reactions via the reversible oxidation of two cysteine thiol groups in a structurally conserved active site. Here, the NMR solution structures of a reduced and oxidized thioredoxin from Ehrlichia chaffeensis (Ec-Trx, ECH_0218), the etiological agent responsible for human monocytic ehrlichiosis, are described. The overall topology of the calculated structures is similar in both redox states and is similar to those of other thioredoxins: a five-stranded, mixed β-sheet (β1-β3-β2-β4-β5) surrounded by four α-helices. Unlike other thioredoxins studied by NMR in both redox states, the H-N HSQC spectrum of reduced Ec-Trx was missing eight additional amide cross peaks relative to the spectrum of oxidized Ec-Trx. These missing amides correspond to residues Cys35-Glu39 in the active-site-containing helix (α2) and Ser72-Ile75 in a loop near the active site, and suggest a change in backbone dynamics on the millisecond-to-microsecond timescale associated with the breakage of an intramolecular Cys32-Cys35 disulfide bond in a thioredoxin. A consequence of the missing amide resonances is the absence of observable or unambiguous NOEs to provide the distance restraints necessary to define the N-terminal end of the α-helix containing the CPGC active site in the reduced state. This region adopts a well defined α-helical structure in other reported reduced thioredoxin structures, is mostly helical in oxidized Ec-Trx and CD studies of Ec-Trx in both redox states suggests there is no significant difference in the secondary structure of the protein. The NMR solution structure of reduced Ec-Trx illustrates that the absence of canonical structure in a region of a protein may be owing to unfavorable dynamics prohibiting NOE observations or unambiguous NOE assignments.

摘要

硫氧还蛋白是一类广泛存在的小蛋白,它们通过结构保守的活性位点中两个半胱氨酸巯基的可逆氧化参与多种氧化还原反应。本文描述了来自恰菲埃立克体(Ec-Trx,ECH_0218)的还原态和氧化态硫氧还蛋白的核磁共振溶液结构,恰菲埃立克体是引起人类单核细胞埃立克体病的病原体。计算得到的两种氧化还原状态结构的整体拓扑结构相似,且与其他硫氧还蛋白的拓扑结构相似:由四条α螺旋包围的五股混合β折叠(β1-β3-β2-β4-β5)。与其他通过核磁共振研究的处于两种氧化还原状态的硫氧还蛋白不同,相对于氧化态的Ec-Trx谱,还原态Ec-Trx的H-N HSQC谱缺少另外八个酰胺交叉峰。这些缺失的酰胺对应于含活性位点的螺旋(α2)中的Cys35-Glu39残基以及活性位点附近环中的Ser72-Ile75残基,这表明在毫秒到微秒时间尺度上主链动力学发生了变化,这与硫氧还蛋白中分子内Cys32-Cys35二硫键的断裂有关。酰胺共振缺失的一个结果是,在还原态下,没有可观察到的或明确的核Overhauser效应(NOE)来提供定义含CPGC活性位点的α螺旋N端所需的距离约束。在其他报道的还原态硫氧还蛋白结构中,该区域采用明确的α螺旋结构,在氧化态Ec-Trx中大多为螺旋结构,并且对处于两种氧化还原状态的Ec-Trx进行的圆二色性研究表明,该蛋白的二级结构没有显著差异。还原态Ec-Trx的核磁共振溶液结构表明,蛋白质区域中缺乏典型结构可能是由于不利的动力学阻碍了NOE观察或明确的NOE归属。