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大肠杆菌中不同含硒甲酸脱氢酶的解析

Resolution of distinct selenium-containing formate dehydrogenases from Escherichia coli.

作者信息

Cox J C, Edwards E S, DeMoss J A

出版信息

J Bacteriol. 1981 Mar;145(3):1317-24. doi: 10.1128/jb.145.3.1317-1324.1981.

Abstract

Formate dehydrogenase, a component activity of two alternative electron transport pathways in anaerobic Escherichia coli, has been resolved as two distinguishable enzymes. One, which was induced with nitrate reductase as a component of the formate-nitrate reductase pathway, utilized phenazine methosulfate (PMS) in preference to benzyl viologen (BV) as an artificial electron acceptor and appeared to be exclusively membrane-bound. A second formate dehydrogenase, which was induced as a component of the formate hydrogenlyase pathway, appeared to exist both as a membrane-bound form and as a cytoplasmic enzyme; the cytoplasmic activity was resolved completely from the PMS-linked activity on a sucrose gradient. When E. coli was grown in the presence of 75Se-selenite, a 110,000-dalton selenopeptide, previously shown to be a component of the PMS-linked enzyme, was induced and repressed with this activity. In contrast, an 80,000-dalton selenopeptide was induced and repressed with the BV-linked activity and exhibited a distribution similar to the BV-linked formate dehydrogenase in cell fractions and in sucrose gradients. The results indicate that the two formate dehydrogenases are distinguishable on the basis of their artificial electron acceptor specificity, their cellular localization, and the size of their respective selenoprotein components.

摘要

甲酸脱氢酶是厌氧大肠杆菌中两条交替电子传递途径的组成活性成分,已被解析为两种可区分的酶。一种是作为甲酸 - 硝酸盐还原酶途径的组成部分与硝酸盐还原酶一起被诱导产生的,它优先利用吩嗪硫酸甲酯(PMS)而非苄基紫精(BV)作为人工电子受体,并且似乎完全与膜结合。第二种甲酸脱氢酶是作为甲酸氢化酶途径的组成部分被诱导产生的,它似乎既以与膜结合的形式存在,也以细胞质酶的形式存在;在蔗糖梯度上,细胞质活性与PMS相关活性完全分离。当大肠杆菌在75Se - 亚硒酸盐存在下生长时,一种先前已证明是PMS相关酶的组成部分的110,000道尔顿硒肽被诱导产生,并随该活性被抑制。相比之下,一种80,000道尔顿的硒肽被BV相关活性诱导产生并被抑制,并且在细胞组分和蔗糖梯度中表现出与BV相关甲酸脱氢酶相似的分布。结果表明,这两种甲酸脱氢酶在其人工电子受体特异性、细胞定位以及各自硒蛋白组分的大小方面是可区分的。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/eb5b/217135/4438be87afbe/jbacter00274-0209-a.jpg

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