氮酶的机制:新角色的摇摆?

IF 2.7 3区 化学 Q3 BIOCHEMISTRY & MOLECULAR BIOLOGY Journal of Biological Inorganic Chemistry Pub Date : 2024-12-19 DOI:10.1007/s00775-024-02085-7
Rebeccah A Warmack, Douglas C Rees
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引用次数: 0

摘要

2000年,R.D. Britt及其同事在对光系统II中四锰氧演化团簇的分析中,将从核心金属团簇中突出的腾勒位点引入了生物无机词典。从这个角度来看,我们考虑了类似的dangler位点是否参与了氮酶还原二氮的机制。两种可能的作用,动态摆动在活性部位的FeMo辅助因子强调,可能发生在周转期间瞬态。第一个钩环的作用涉及S2B带硫被一氧化碳和其他配体取代,而第二个钩环的作用可能涉及整个簇,当His- α 442侧链被高柠檬酸盐配体的游离羧基取代到钼上时。为了评估水是否能够与辅因子相互作用,研究人员对合成化合物和蛋白质中与[4Fe4S]簇接触的小配体(水和碱金属离子)进行了调查。这一调查显示,这些地点更倾向于包裹在2Fe2S菱形的中心。在固氮酶静息状态下,水分子被排除在S2B位点之外,这表明在催化过程中水分子不太可能与FeMo辅因子协调。虽然发现碱金属离子通常会影响二氮还原催化剂的性能,但没有令人信服的证据表明,在FeMo辅因子附近的任何水都可能是钠离子或钾离子。如果腾格勒位点存在于氮酶机制中,那么它们很可能是由静息态的FeMo辅因子结构的局部变化而瞬时形成的。
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The nitrogenase mechanism: new roles for the dangler?

Dangler sites protruding from a core metallocluster were introduced into the bioinorganic lexicon in 2000 by R.D. Britt and co-workers in an analysis of the tetramanganese oxygen-evolving cluster in photosystem II. In this perspective, we consider whether analogous dangler sites could participate in the mechanism of dinitrogen reduction by nitrogenase. Two possible roles for dynamic danglers in the active site FeMo cofactor are highlighted that might occur transiently during turnover. The first role for a dangler involves the S2B belt sulfur associated with displacement by carbon monoxide and other ligands, while the second dangler role could involve the entire cluster upon displacement of the His-  α  442 side chain to the molybdenum by a free carboxyl group of the homocitrate ligand. To assess whether waters might be able to interact with the cofactor, a survey of small ligands (water and alkali metal ions) contacting [4Fe4S] clusters in synthetic compounds and proteins was conducted. This survey reveals a preference for these sites to pack over the centers of 2Fe2S rhombs. Waters are excluded from the S2B site in the resting state of nitrogenase, suggesting it is unlikely that water molecules coordinate to the FeMo cofactor during catalysis. While alkali metal ions are found to generally influence the properties of catalysts for dinitrogen reduction, no convincing evidence was found that any of the waters near the FeMo cofactor could instead be sodium or potassium ions. Dangler sites, if they exist in the nitrogenase mechanism, are likely formed transiently by localized changes to the resting-state FeMo cofactor structure.

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来源期刊
Journal of Biological Inorganic Chemistry
Journal of Biological Inorganic Chemistry 化学-生化与分子生物学
CiteScore
5.90
自引率
3.30%
发文量
49
审稿时长
3 months
期刊介绍: Biological inorganic chemistry is a growing field of science that embraces the principles of biology and inorganic chemistry and impacts other fields ranging from medicine to the environment. JBIC (Journal of Biological Inorganic Chemistry) seeks to promote this field internationally. The Journal is primarily concerned with advances in understanding the role of metal ions within a biological matrix—be it a protein, DNA/RNA, or a cell, as well as appropriate model studies. Manuscripts describing high-quality original research on the above topics in English are invited for submission to this Journal. The Journal publishes original articles, minireviews, and commentaries on debated issues.
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