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四聚体亚基在希登伯勒脱硫弧菌甲酸脱氢酶中的作用。

Role of the tetrahemic subunit in Desulfovibrio vulgaris hildenborough formate dehydrogenase.

作者信息

ElAntak Latifa, Dolla Alain, Durand Marie-Claire, Bianco Pierre, Guerlesquin Françoise

机构信息

Unité de Bioénergétique et Ingénierie des Protéines, IBSM-CNRS, 31 Chemin Joseph Aiguier, 13402 Marseille Cedex 20, France.

出版信息

Biochemistry. 2005 Nov 15;44(45):14828-34. doi: 10.1021/bi0515366.

Abstract

In the anaerobic sulfate-reducing bacterium Desulfovibrio vulgaris Hildenborough (DvH), the genome sequencing revealed the presence of three operons encoding formate dehydrogenases. fdh1 encodes an alphabetagamma trimeric enzyme containing 11 heme binding sites; fdh2 corresponds to an alphabetagamma trimeric enzyme with a tetrahemic subunit; fdh3 encodes an alphabeta dimeric enzyme. In the present work, spectroscopic measurements demonstrated that the reduction of cytochrome c(553) was obtained in the presence of the trimeric FDH2 and not with the dimeric FDH3, suggesting that the tetrahemic subunit (FDH2C) is essential for the interaction with this physiological electron transfer partner. To further study the role of the tetrahemic subunit, the fdh2C gene was cloned and expressed in Desulfovibrio desulfuricans G201. The recombinant FDH2C was purified and characterized by optical and NMR spectroscopies. The heme redox potentials measured by electrochemistry were found to be identical in the whole enzyme and in the recombinant subunit, indicating a correct folding of the recombinant protein. The mapping of the interacting site by 2D heteronuclear NMR demonstrated a similar interaction of cytochrome c(553) with the native enzyme and the recombinant subunit. The presence of hemes c in the gamma subunit of formate dehydrogenases is specific of these anaerobic sulfate-reducing bacteria and replaces heme b subunit generally found in the enzymes involved in anaerobic metabolisms.

摘要

在厌氧硫酸盐还原菌希登伯勒脱硫弧菌(DvH)中,基因组测序显示存在三个编码甲酸脱氢酶的操纵子。fdh1编码一种含有11个血红素结合位点的字母γ三聚体酶;fdh2对应于一种具有四血红素亚基的字母γ三聚体酶;fdh3编码一种字母β二聚体酶。在本研究中,光谱测量表明,在三聚体FDH2存在的情况下可实现细胞色素c(553)的还原,而二聚体FDH3则不能,这表明四血红素亚基(FDH2C)对于与这种生理电子传递伙伴的相互作用至关重要。为了进一步研究四血红素亚基的作用,将fdh2C基因克隆并在脱硫脱硫弧菌G201中表达。对重组FDH2C进行了纯化,并通过光学和核磁共振光谱进行了表征。通过电化学测量的血红素氧化还原电位在全酶和重组亚基中相同,表明重组蛋白折叠正确。通过二维异核核磁共振对相互作用位点进行的定位表明,细胞色素c(553)与天然酶和重组亚基的相互作用相似。甲酸脱氢酶γ亚基中血红素c的存在是这些厌氧硫酸盐还原菌所特有的,并且取代了通常在参与厌氧代谢的酶中发现的血红素b亚基。

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