首页> 外文期刊>Journal of bacteriology >Novel Genes of the dsr Gene Cluster and Evidence for Close Interaction of Dsr Proteins during Sulfur Oxidation in the Phototrophic Sulfur Bacterium Allochromatium vinosum
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Novel Genes of the dsr Gene Cluster and Evidence for Close Interaction of Dsr Proteins during Sulfur Oxidation in the Phototrophic Sulfur Bacterium Allochromatium vinosum

机译:dsr基因簇的新基因和在光养性硫细菌异色变色菌硫氧化过程中Dsr蛋白紧密相互作用的证据

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Seven new genes designated dsrLJOPNSR were identified immediately downstream of dsrABEFHCMK, completing the dsr gene cluster of the phototrophic sulfur bacterium Allochromatium vinosum D (DSM 180T). Interposon mutagenesis proved an essential role of the encoded proteins for the oxidation of intracellular sulfur, an obligate intermediate during the oxidation of sulfide and thiosulfate. While dsrR and dsrS encode cytoplasmic proteins of unknown function, the other genes encode a predicted NADPH:acceptor oxidoreductase (DsrL), a triheme c-type cytochrome (DsrJ), a periplasmic iron-sulfur protein (DsrO), and an integral membrane protein (DsrP). DsrN resembles cobyrinic acid a,c-diamide synthases and is probably involved in the biosynthesis of siro(heme)amide, the prosthetic group of the dsrAB-encoded sulfite reductase. The presence of most predicted Dsr proteins in A. vinosum was verified by Western blot analysis. With the exception of the constitutively present DsrC, the formation of Dsr gene products was greatly enhanced by sulfide. DsrEFH were purified from the soluble fraction and constitute a soluble α2β2γ2-structured 75-kDa holoprotein. DsrKJO were purified from membranes pointing at the presence of a transmembrane electron-transporting complex consisting of DsrKMJOP. In accordance with the suggestion that related complexes from dissimilatory sulfate reducers transfer electrons to sulfite reductase, the A. vinosum Dsr complex is copurified with sulfite reductase, DsrEFH, and DsrC. We therefore now have an ideal and unique possibility to study the interaction of sulfite reductase with other proteins and to clarify the long-standing problem of electron transport from and to sulfite reductase, not only in phototrophic bacteria but also in sulfate-reducing prokaryotes.
机译: dsrABEFHCMK 的下游立即鉴定出七个名为 dsrLJOPNSR 的新基因,从而完成了光养​​硫细菌 Allochromatium v​​inosum dsr 基因簇。 em> D(DSM 180 T )。子间诱变证明了编码蛋白对于细胞内硫的氧化具有至关重要的作用,硫是氧化硫化物和硫代硫酸盐期间的专性中间体。当 dsrR dsrS 编码功能未知的胞质蛋白时,其他基因则编码预测的NADPH:受体氧化还原酶(DsrL),即三heme c -类型的细胞色素(DsrJ),周质铁硫蛋白(DsrO)和整合膜蛋白(DsrP)。 DsrN类似于cobyrinic酸 a,c -二酰胺合酶,可能参与生物合成西罗(血红素)酰胺,这是 dsrAB 编码的亚硫酸盐还原酶的辅基。大多数预测的Dsr蛋白在 A中的存在。葡萄球菌通过蛋白质印迹分析验证。除了组成型存在的DsrC以外,硫化物大大增强了Dsr基因产物的形成。从可溶性级分中纯化出DsrEFH,构成可溶性α 2 β 2 γ 2 结构的75-kDa全蛋白。从膜中纯化DsrKJO,指出存在由DsrKMJOP组成的跨膜电子传输复合物。根据这样的建议,异化硫酸盐还原剂的相关络合物将电子转移至亚硫酸盐还原酶 A。用亚硫酸盐还原酶,DsrEFH和DsrC共同纯化Vinosum Dsr复合物。因此,我们现在有一个理想的独特可能性来研究亚硫酸盐还原酶与其他蛋白质的相互作用,并阐明长期存在的电子往返亚硫酸盐还原酶的问题,不仅存在于光养细菌中,而且存在于硫酸盐还原原核生物中。

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