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铁依赖型腈水合酶活性位点模型的电子结构、键合、光谱学与能量学

Electronic structure, bonding, spectroscopy and energetics of Fe-dependent nitrile hydratase active-site models.

作者信息

Greene Shannon N, Richards Nigel G J

机构信息

Department of Chemistry, University of Florida, Gainesville, 32611-7200, USA.

出版信息

Inorg Chem. 2006 Jan 9;45(1):17-36. doi: 10.1021/ic050965p.

Abstract

Fe-type nitrile hydratase (NHase) is a non-heme Fe(III)-dependent enzyme that catalyzes the hydration of nitriles to the corresponding amides. Despite experimental studies of the enzyme and model Fe(III)-containing complexes, many questions concerning the electronic structure and spectroscopic transitions of the metal center remain unanswered. In addition, the catalytic mechanism of nitrile hydration has not yet been determined. We now report density functional theory (B3LYP/6-31G) calculations on three models of the Fe(III) center in the active site of NHase corresponding to hypothetical intermediates in the enzyme-catalyzed hydration of acetonitrile. Together with natural bond orbital (NBO) analysis of the chemical bonding in these active-site models and INDO/S CIS calculations of their electronic spectra, this theoretical investigation gives new insight into the molecular origin of the unusual low-spin preference and spectroscopic properties of the Fe(III) center. In addition, the low-energy electronic transition observed for the active form of NHase is assigned to a dd transition that is coupled with charge-transfer transitions involving the metal and its sulfur ligands. Calculations of isodesmic ligand-exchange reaction energies provide support for coordination of the Fe(III) center in free NHase by a water molecule rather than a hydroxide ion and suggest that the activation of the nitrile substrate by binding to the metal in the sixth coordination site during catalytic turnover cannot yet be definitively ruled out.

摘要

铁型腈水合酶(NHase)是一种非血红素铁(III)依赖性酶,可催化腈水合生成相应的酰胺。尽管对该酶和含模型铁(III)的配合物进行了实验研究,但有关金属中心的电子结构和光谱跃迁的许多问题仍未得到解答。此外,腈水合的催化机制尚未确定。我们现在报告对NHase活性位点中铁(III)中心的三种模型进行密度泛函理论(B3LYP/6-31G)计算,这些模型对应于乙腈酶催化水合过程中的假设中间体。结合这些活性位点模型中化学键的自然键轨道(NBO)分析及其电子光谱的INDO/S CIS计算,这项理论研究为铁(III)中心异常的低自旋偏好和光谱性质的分子起源提供了新的见解。此外,NHase活性形式中观察到的低能电子跃迁被归因于与涉及金属及其硫配体的电荷转移跃迁耦合的dd跃迁。等键配体交换反应能量的计算为游离NHase中铁(III)中心与水分子而非氢氧根离子的配位提供了支持,并表明在催化周转过程中腈底物通过与第六配位位点的金属结合而活化的可能性尚未被明确排除。

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