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首页> 外文期刊>Applied and Environmental Microbiology >Chimeric Vitreoscilla Hemoglobin (VHb) Carrying a Flavoreductase Domain Relieves Nitrosative Stress in Escherichia coli: New Insight into the Functional Role of VHb
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Chimeric Vitreoscilla Hemoglobin (VHb) Carrying a Flavoreductase Domain Relieves Nitrosative Stress in Escherichia coli: New Insight into the Functional Role of VHb

机译:携带黄酮还原酶结构域的嵌合玻璃体血红蛋白(VHb)减轻了大肠杆菌的亚硝化胁迫:VHb功能作用的新见解

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摘要

Dimeric hemoglobin (VHb) from the bacterium Vitreoscilla sp. strain C1 displays 30 to 53% sequence identity with the heme-binding domain of flavohemoglobins (flavoHbs) and exhibits the presence of potential sites for the interaction with its FAD/NADH reductase partner. The intersubunit contact region of VHb indicates a small interface between two monomers of the homodimer, suggesting that the VHb dimers may dissociate easily. Gel filtration chromatography of VHb exhibited a 25 to 30% monomeric population of VHb, at a low protein concentration (0.05 mg/ml), whereas dimeric VHb remained dominant at a high protein concentration (10 mg/ml). The structural characteristics of VHb suggest that the flavoreductase can also associate and interact with VHb in a manner analogous to flavoHbs and could yield a flavo-VHb complex. To unravel the functional relevance of the VHb-reductase association, the reductase domain of flavoHb from Ralstonia eutropha (formerly Alcaligenes eutrophus) was genetically engineered to generate a VHb-reductase chimera (VHb-R). The physiological implications of VHb and VHb-R were studied in an hmp mutant of Escherichia coli, incapable of producing any flavoHb. Cellular respiration the of the hmp mutant was instantaneously inhibited in the presence of 10 μM nitric oxide (NO) but remained insensitive to NO inhibition when these cells produced VHb-R. In addition, E. coli overproducing VHb-R exhibited NO consumption activity that was two to three times slower in cells overexpressing only VHb and totally undetectable in the control cells. A purified preparation of VHb-R exhibited a three- to fourfold-higher NADH-dependent NO uptake activity than that of VHb alone. Overproduction of VHb-R in the hmp mutant of E. coli conferred relief from the toxicity of sodium nitroprusside, whereas VHb alone provided only partial benefit under similar condition, suggesting that the association of VHb with reductase improves its capability to relieve the deleterious effect of nitrosative stress. Based on these results, it has been proposed that the unique structural features of VHb may allow it to acquire two functional states in vivo, namely, a single-domain homodimer that may participate in facilitated oxygen transfer or a two-domain heterodimer in association with its partner reductase that may be involved in modulating the cellular response under different environmental conditions. Due to this inherent structural flexibility, it may perform multiple functions in the cellular metabolism of its host. Separation of the oxidoreductase domain from VHb may thus provide a physiological advantage to its host.
机译:Vitreoscilla sp。细菌的二聚体血红蛋白(VHb)。菌株C1与黄素血球蛋白(flavoHbs)的血红素结合域显示30%至53%的序列同一性,并显示出与其FAD / NADH还原酶伴侣相互作用的潜在位点。 VHb的亚基间接触区域表明同型二聚体的两个单体之间的界面很小,这表明VHb二聚体可能很容易解离。 VHb的凝胶过滤色谱法在低蛋白浓度(0.05 mg / ml)下显示25%至30%的VHb单体种群,而二聚VHb在高蛋白浓度(10 mg / ml)下仍然占主导地位。 VHb的结构特征表明,风味释放酶还可以以类似于flavoHbs的方式与VHb缔合和相互作用,并可以产生flavo-VHb复合物。为了揭露VHb-还原酶关联的功能相关性,对富营养的Ralstonia eutropha(以前称为Alcaligenes eutrophus)的flavoHb的还原酶结构域进行了基因工程改造,以生成VHb-还原酶嵌合体(VHb-R)。在大肠杆菌的hmp突变体中研究了VHb和VHb-R的生理学意义,该突变体无法产生任何flavoHb。在10μM一氧化氮(NO)存在的情况下,hmp突变体的细胞呼吸瞬时被抑制,但是当这些细胞产生VHb-R时,其对NO抑制不敏感。此外,过量生产VHb-R的大肠杆菌在仅过表达VHb的细胞中表现出的NO消耗活性要慢两到三倍,而在对照细胞中却完全无法检测到。纯化的VHb-R制剂显示出比单独的VHb高3至4倍的NADH依赖性NO吸收活性。大肠杆菌的hmp突变体中VHb-R的过量生产可缓解硝普钠的毒性,而VHb单独在类似条件下仅提供部分益处,这表明VHb与还原酶的结合提高了其缓解甲氧西林有害作用的能力。亚硝化胁迫。基于这些结果,已经提出VHb的独特结构特征可以使其在体内获得两个功能状态,即可以参与促进的氧转移的单结构域同二聚体或与之结合的两​​个结构域异二聚体。其伴侣还原酶可能参与调节不同环境条件下的细胞反应。由于这种固有的结构灵活性,它可以在其宿主的细胞代谢中执行多种功能。因此,将氧化还原酶结构域与VHb分离可以为其宿主提供生理优势。

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