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通过半胱氨酸扫描诱变鉴定钼辅因子硫化酶 ABA3 的 NifS 样结构域中与过硫化物结合和二硫化物形成的半胱氨酸残基。

Identification of persulfide-binding and disulfide-forming cysteine residues in the NifS-like domain of the molybdenum cofactor sulfurase ABA3 by cysteine-scanning mutagenesis.

机构信息

Department of Plant Biology, Braunschweig University of Technology, Humboldtstrasse 1, 38023 Braunschweig, Germany.

出版信息

Biochem J. 2012 Feb 1;441(3):823-32. doi: 10.1042/BJ20111170.

DOI:10.1042/BJ20111170
PMID:22004669
Abstract

The Moco (molybdenum cofactor) sulfurase ABA3 from Arabidopsis thaliana catalyses the sulfuration of the Moco of aldehyde oxidase and xanthine oxidoreductase, which represents the final activation step of these enzymes. ABA3 consists of an N-terminal NifS-like domain that exhibits L-cysteine desulfurase activity and a C-terminal domain that binds sulfurated Moco. The strictly conserved Cys430 in the NifS-like domain binds a persulfide intermediate, which is abstracted from the substrate L-cysteine and finally needs to be transferred to the Moco of aldehyde oxidase and xanthine oxidoreductase. In addition to Cys⁴³⁰, another eight cysteine residues are located in the NifS-like domain, with two of them being highly conserved among Moco sulfurase proteins and, at the same time, being in close proximity to Cys⁴³⁰. By determination of the number of surface-exposed cysteine residues and the number of persulfide-binding cysteine residues in combination with the sequential substitution of each of the nine cysteine residues, a second persulfide-binding cysteine residue, Cys²⁰⁶, was identified. Furthermore, the active-site Cys⁴³⁰ was found to be located on top of a loop structure, formed by the two flanking residues Cys⁴²⁸ and Cys⁴³⁵, which are likely to form an intramolecular disulfide bridge. These findings are confirmed by a structural model of the NifS-like domain, which indicates that Cys⁴²⁸ and Cys⁴³⁵ are within disulfide bond distance and that a persulfide transfer from Cys⁴³⁰ to Cys²⁰⁶ is indeed possible.

摘要

拟南芥 Moco(钼辅因子)硫化酶 ABA3 催化醛氧化酶和黄嘌呤氧化还原酶的 Moco 硫化,这代表了这些酶的最终激活步骤。ABA3 由一个 N 端的 NifS 样结构域组成,该结构域表现出 L-半胱氨酸脱硫酶活性,以及一个 C 端结构域,该结构域结合硫代 Moco。NifS 样结构域中严格保守的 Cys430 结合过硫化物中间体,该中间体从底物 L-半胱氨酸中提取,最终需要转移到醛氧化酶和黄嘌呤氧化还原酶的 Moco 中。除了 Cys⁴³⁰ 之外,NifS 样结构域中还有另外八个半胱氨酸残基,其中两个在 Moco 硫化酶蛋白中高度保守,同时与 Cys⁴³⁰ 接近。通过确定表面暴露的半胱氨酸残基数和过硫化物结合半胱氨酸残基数,并结合每个九个半胱氨酸残基的顺序取代,鉴定出第二个过硫化物结合半胱氨酸残基 Cys²⁰⁶。此外,活性位点 Cys⁴³⁰ 位于由两个侧翼残基 Cys⁴²⁸ 和 Cys⁴³⁵ 形成的环结构的顶部,该环结构可能形成一个分子内二硫键。这些发现得到了 NifS 样结构域的结构模型的证实,该模型表明 Cys⁴²⁸ 和 Cys⁴³⁵ 在二硫键距离内,并且 Cys⁴³⁰ 向 Cys²⁰⁶ 的过硫化物转移确实是可能的。

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