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对拟南芥ABA3中类NifS结构域的表征为钼辅因子硫化机制提供了深入了解。

Characterization of the NifS-like domain of ABA3 from Arabidopsis thaliana provides insight into the mechanism of molybdenum cofactor sulfuration.

作者信息

Heidenreich Torsten, Wollers Silke, Mendel Ralf R, Bittner Florian

机构信息

Department of Plant Biology, Technical University of Braunschweig, 38023 Braunschweig, Germany.

出版信息

J Biol Chem. 2005 Feb 11;280(6):4213-8. doi: 10.1074/jbc.M411195200. Epub 2004 Nov 22.

Abstract

The molybdenum cofactor sulfurase ABA3 from Arabidopsis thaliana specifically regulates the activity of the molybdenum enzymes aldehyde oxidase and xanthine dehydrogenase by converting their molybdenum cofactor from the desulfo-form into the sulfo-form. ABA3 is a two-domain protein with an NH2-terminal domain sharing significant similarities to NifS proteins that catalyze the decomposition of l-cysteine to l-alanine and elemental sulfur for iron-sulfur cluster synthesis. Although different in its physiological function, the mechanism of ABA3 for sulfur mobilization was found to be similar to NifS proteins. The protein binds a pyridoxal phosphate cofactor and a substrate-derived persulfide intermediate, and site-directed mutagenesis of strictly conserved binding sites for the cofactor and the persulfide demonstrated that they are essential for molybdenum cofactor sulfurase activity. In vitro, the NifS-like domain of ABA3 activates aldehyde oxidase and xanthine dehydrogenase in the absence of the C-terminal domain, but in vivo, the C-terminal domain is required for proper activation of both target enzymes. In addition to its cysteine desulfurase activity, ABA3-NifS also exhibits selenocysteine lyase activity. Although l-selenocysteine is unlikely to be a natural substrate for ABA3, it is decomposed more efficiently than l-cysteine. Besides mitochondrial AtNFS1 and plastidial AtNFS2, which are both proposed to be involved in iron-sulfur cluster formation, ABA3 is proposed to be a third and cytosolic NifS-like cysteine desulfurase in A. thaliana. However, the sulfur transferase activity of ABA3 is used for post-translational activation of molybdenum enzymes rather than for iron-sulfur cluster assembly.

摘要

拟南芥的钼辅因子硫酸化酶ABA3通过将钼酶醛氧化酶和黄嘌呤脱氢酶的钼辅因子从脱硫形式转化为含硫形式,特异性地调节它们的活性。ABA3是一种双结构域蛋白,其NH2末端结构域与NifS蛋白具有显著相似性,NifS蛋白催化L-半胱氨酸分解为L-丙氨酸和元素硫以合成铁硫簇。尽管ABA3在生理功能上有所不同,但其硫动员机制被发现与NifS蛋白相似。该蛋白结合磷酸吡哆醛辅因子和底物衍生的过硫化物中间体,对辅因子和过硫化物的严格保守结合位点进行定点诱变表明,它们对钼辅因子硫酸化酶活性至关重要。在体外,ABA3的NifS样结构域在没有C末端结构域的情况下激活醛氧化酶和黄嘌呤脱氢酶,但在体内,C末端结构域是两种靶酶正确激活所必需的。除了其半胱氨酸脱硫酶活性外,ABA3-NifS还表现出硒代半胱氨酸裂合酶活性。尽管L-硒代半胱氨酸不太可能是ABA3的天然底物,但它比L-半胱氨酸更有效地分解。除了线粒体AtNFS1和质体AtNFS2(两者都被认为参与铁硫簇的形成)外,ABA3被认为是拟南芥中的第三种且位于胞质中的NifS样半胱氨酸脱硫酶。然而,ABA3的硫转移酶活性用于钼酶的翻译后激活,而不是用于铁硫簇组装。

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