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应美国化学学会无机化学奖之邀撰写的获奖论文。生物无机化学中几何结构和电子结构对功能的贡献:非血红素铁酶的活性位点

Invited award contribution for ACS Award in Inorganic Chemistry. Geometric and electronic structure contributions to function in bioinorganic chemistry: active sites in non-heme iron enzymes.

作者信息

Solomon E I

机构信息

Department of Chemistry, Stanford University, Stanford, California 94305-5080, USA.

出版信息

Inorg Chem. 2001 Jul 16;40(15):3656-69. doi: 10.1021/ic010348a.

Abstract

Spectroscopy has played a major role in the definition of structure/function correlations in bioinorganic chemistry. The importance of spectroscopy combined with electronic structure calculations is clearly demonstrated by the non-heme iron enzymes. Many members of this large class of enzymes activate dioxygen using a ferrous active site that has generally been difficult to study with most spectroscopic methods. A new spectroscopic methodology has been developed utilizing variable temperature, variable field magnetic circular dichroism, which enables one to obtain detailed insight into the geometric and electronic structure of the non-heme ferrous active site and probe its reaction mechanism on a molecular level. This spectroscopic methodology is presented and applied to a number of key mononuclear non-heme iron enzymes leading to a general mechanistic strategy for O2 activation. These studies are then extended to consider the new features present in the binuclear non-heme iron enzymes and applied to understand (1) the mechanism of the two electron/coupled proton transfer to dioxygen binding to a single iron center in hemerythrin and (2) structure/function correlations over the oxygen-activating enzymes stearoyl-ACP Delta9-desaturase, ribonucleotide reductase, and methane monooxygenase. Electronic structure/reactivity correlations for O2 activation by non-heme relative to heme iron enzymes will also be developed.

摘要

光谱学在生物无机化学中结构/功能相关性的定义方面发挥了重要作用。非血红素铁酶清楚地证明了光谱学与电子结构计算相结合的重要性。这类大型酶中的许多成员利用亚铁活性位点激活双氧,而大多数光谱方法通常难以研究该位点。一种新的光谱方法已经开发出来,它利用可变温度、可变磁场磁圆二色性,使人们能够深入了解非血红素亚铁活性位点的几何和电子结构,并在分子水平上探究其反应机制。本文介绍了这种光谱方法,并将其应用于一些关键的单核非血红素铁酶,从而得出了一种通用的双氧激活机制策略。然后,这些研究扩展到考虑双核非血红素铁酶中存在的新特征,并应用于理解(1)在蚯蚓血红蛋白中两个电子/耦合质子转移到与单个铁中心结合的双氧的机制,以及(2)在氧激活酶硬脂酰-ACP Δ9-去饱和酶、核糖核苷酸还原酶和甲烷单加氧酶中的结构/功能相关性。还将建立非血红素相对于血红素铁酶激活双氧的电子结构/反应性相关性。

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