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双功能硫代硫酸盐脱氢酶/连四硫酸盐还原酶二血红素细胞色素c TsdA的电子接受单元

Electron Accepting Units of the Diheme Cytochrome c TsdA, a Bifunctional Thiosulfate Dehydrogenase/Tetrathionate Reductase.

作者信息

Kurth Julia M, Brito José A, Reuter Jula, Flegler Alexander, Koch Tobias, Franke Thomas, Klein Eva-Maria, Rowe Sam F, Butt Julea N, Denkmann Kevin, Pereira Inês A C, Archer Margarida, Dahl Christiane

机构信息

From the Institut für Mikrobiologie & Biotechnologie, Rheinische Friedrich-Wilhelms-Universität Bonn, 53115 Bonn, Germany.

the Instituto de Tecnologia Química e Biológica António Xavier, Universidade Nova de Lisboa (ITQB-UNL), 2780-157 Oeiras, Portugal, and.

出版信息

J Biol Chem. 2016 Nov 25;291(48):24804-24818. doi: 10.1074/jbc.M116.753863. Epub 2016 Sep 30.

Abstract

The enzymes of the thiosulfate dehydrogenase (TsdA) family are wide-spread diheme c-type cytochromes. Here, redox carriers were studied mediating the flow of electrons arising from thiosulfate oxidation into respiratory or photosynthetic electron chains. In a number of organisms, including Thiomonas intermedia and Sideroxydans lithotrophicus, the tsdA gene is immediately preceded by tsdB encoding for another diheme cytochrome. Spectrophotometric experiments in combination with enzymatic assays in solution showed that TsdB acts as an effective electron acceptor of TsdA in vitro when TsdA and TsdB originate from the same source organism. Although TsdA covers a range from -300 to +150 mV, TsdB is redox active between -100 and +300 mV, thus enabling electron transfer between these hemoproteins. The three-dimensional structure of the TsdB-TsdA fusion protein from the purple sulfur bacterium Marichromatium purpuratum was solved by X-ray crystallography to 2.75 Å resolution providing insights into internal electron transfer. In the oxidized state, this tetraheme cytochrome c contains three hemes with axial His/Met ligation, whereas heme 3 exhibits the His/Cys coordination typical for TsdA active sites. Interestingly, thiosulfate is covalently bound to Cys on heme 3. In several bacteria, including Allochromatium vinosum, TsdB is not present, precluding a general and essential role for electron flow. Both AvTsdA and the MpTsdBA fusion react efficiently in vitro with high potential iron-sulfur protein from A. vinosum (E +350 mV). High potential iron-sulfur protein not only acts as direct electron donor to the reaction center in anoxygenic phototrophs but can also be involved in aerobic respiratory chains.

摘要

硫代硫酸盐脱氢酶(TsdA)家族的酶是广泛存在的双血红素c型细胞色素。在此,研究了介导硫代硫酸盐氧化产生的电子流入呼吸或光合电子链的氧化还原载体。在包括中间硫单胞菌和嗜铁氧化还原菌在内的许多生物体中,tsdA基因紧挨着编码另一种双血红素细胞色素的tsdB基因。溶液中的分光光度实验与酶促测定相结合表明,当TsdA和TsdB源自同一来源生物体时,TsdB在体外作为TsdA的有效电子受体。尽管TsdA的电位范围为-300至+150 mV,但TsdB在-100至+300 mV之间具有氧化还原活性,从而实现这些血红素蛋白之间的电子转移。通过X射线晶体学解析了紫色硫细菌紫红红假单胞菌的TsdB-TsdA融合蛋白的三维结构,分辨率达到2.75 Å,为内部电子转移提供了见解。在氧化状态下,这种四血红素细胞色素c包含三个具有轴向His/Met配体的血红素,而血红素3表现出TsdA活性位点典型的His/Cys配位。有趣的是,硫代硫酸盐与血红素3上的Cys共价结合。在包括嗜酒色杆菌在内的几种细菌中,不存在TsdB,这排除了其在电子流中的普遍且必不可少的作用。嗜酒色杆菌的AvTsdA和紫红红假单胞菌的MpTsdBA融合蛋白在体外都能与嗜酒色杆菌的高电位铁硫蛋白(E +350 mV)高效反应。高电位铁硫蛋白不仅作为无氧光合生物中反应中心的直接电子供体,还可参与有氧呼吸链。

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