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首页> 外文期刊>Journal of bacteriology >Cloning, characterization, and expression in Escherichia coli of the genes encoding the cytochrome d oxidase complex from Azotobacter vinelandii.
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Cloning, characterization, and expression in Escherichia coli of the genes encoding the cytochrome d oxidase complex from Azotobacter vinelandii.

机译:葡萄固氮菌编码细胞色素D氧化酶复合物的基因的克隆,鉴定和在大肠杆菌中的表达。

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Azotobacter vinelandii is a free-living nitrogen-fixing bacterium that has one of the highest respiratory rates of all aerobic organisms. Based on various physiological studies, a d-type cytochrome has been postulated to be the terminal oxidase of a vigorously respiring but apparently uncoupled branch of the electron transport system in the membranes of this organism. We cloned and characterized the structural genes of the two subunits of this oxidase. The deduced amino acid sequences of both subunits of the A. vinelandii oxidase have extensive regions of homology with those of the two subunits of the Escherichia coli cytochrome d complex. Most notably, the histidine residues proposed to be the axial ligands for the b hemes of the E. coli oxidase and an 11-amino-acid stretch proposed to be part of the ubiquinone binding site are all conserved in subunit I of the A. vinelandii oxidase. The A. vinelandii cytochrome d was expressed in a spectrally and functionally active form in the membranes of E. coli, under the control of the lac or tac promoter. The spectral features of the A. vinelandii cytochrome d expressed in E. coli are very similar to those of the E. coli cytochrome d. The expressed oxidase was active as a quinol oxidase and could reconstitute an NADH to oxygen electron transport chain.
机译:葡萄固氮菌是一种自由活动的固氮细菌,在所有需氧生物中呼吸速率最高。基于各种生理学研究,已假定d型细胞色素是该生物体膜中电子传输系统的剧烈呼吸但显然未偶联分支的末端氧化酶。我们克隆并表征了该氧化酶的两个亚基的结构基因。推导的葡萄曲霉氧化酶的两个亚基的氨基酸序列与大肠杆菌细胞色素d复合物的两个亚基具有广泛的同源性。最值得注意的是,被提议为大肠杆菌氧化酶的血红素的轴向配体的组氨酸残基和被提议为泛醌结合位点的一部分的11个氨基酸的延伸片段均在A. vinelandii的亚基I中保守。氧化酶。在lac或tac启动子的控制下,A。vinelandii细胞色素d以光谱和功能活性形式在大肠杆菌的膜中表达。在大肠杆菌中表达的葡萄曲霉细胞色素d的光谱特征与大肠杆菌细胞色素d的光谱特征非常相似。所表达的氧化酶作为喹诺酮氧化酶具有活性,并且可以将NADH重构为氧电子传输链。

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