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通过单核非血红素铁(IV)-氧配合物来调节氧化反应的反应活性和反应机理。

Tuning reactivity and mechanism in oxidation reactions by mononuclear nonheme iron(IV)-oxo complexes.

机构信息

Department of Chemistry and Nano Science, Department of Bioinspired Science, Center for Biomimetic Systems, Ewha Womans University , Seoul 120-750, Korea.

出版信息

Acc Chem Res. 2014 Apr 15;47(4):1146-54. doi: 10.1021/ar400258p. Epub 2014 Feb 13.

DOI:10.1021/ar400258p
PMID:24524675
Abstract

Mononuclear nonheme iron enzymes generate high-valent iron(IV)-oxo intermediates that effect metabolically important oxidative transformations in the catalytic cycle of dioxygen activation. In 2003, researchers first spectroscopically characterized a mononuclear nonheme iron(IV)-oxo intermediate in the reaction of taurine: α-ketogultarate dioxygenase (TauD). This nonheme iron enzyme with an iron active center was coordinated to a 2-His-1- carboxylate facial triad motif. In the same year, researchers obtained the first crystal structure of a mononuclear nonheme iron(IV)-oxo complex bearing a macrocyclic supporting ligand, (TMC)Fe(IV)(O) (TMC = 1,4,8,11-tetramethyl-1,4,8,11-tetraazacyclotetradecene), in studies that mimicked the biological enzymes. With these breakthrough results, many other studies have examined mononuclear nonheme iron(IV)-oxo intermediates trapped in enzymatic reactions or synthesized in biomimetic reactions. Over the past decade, researchers in the fields of biological, bioinorganic, and oxidation chemistry have extensively investigated the structure, spectroscopy, and reactivity of nonheme iron(IV)-oxo species, leading to a wealth of information from these enzymatic and biomimetic studies. This Account summarizes the reactivity and mechanisms of synthetic mononuclear nonheme iron(IV)-oxo complexes in oxidation reactions and examines factors that modulate their reactivities and change their reaction mechanisms. We focus on several reactions including the oxidation of organic and inorganic compounds, electron transfer, and oxygen atom exchange with water by synthetic mononuclear nonheme iron(IV)-oxo complexes. In addition, we recently observed that the C-H bond activation by nonheme iron(IV)-oxo and other nonheme metal(IV)-oxo complexes does not follow the H-atom abstraction/oxygen-rebound mechanism, which has been well-established in heme systems. The structural and electronic effects of supporting ligands on the oxidizing power of iron(IV)-oxo complexes are significant in these reactions. However, the difference in spin states between nonheme iron(IV)-oxo complexes with an octahedral geometry (with an S = 1 intermediate-spin state) or a trigonal bipyramidal (TBP) geometry (with an S = 2 high-spin state) does not lead to a significant change in reactivity in biomimetic systems. Thus, the importance of the high-spin state of iron(IV)-oxo species in nonheme iron enzymes remains unexplained. We also discuss how the axial and equatorial ligands and binding of redox-inactive metal ions and protons to the iron-oxo moiety influence the reactivities of the nonheme iron(IV)-oxo complexes. We emphasize how these changes can enhance the oxidizing power of nonheme metal(IV)-oxo complexes in oxygen atom transfer and electron-transfer reactions remarkably. This Account demonstrates great advancements in the understanding of the chemistry of mononuclear nonheme iron(IV)-oxo intermediates within the last 10 years.

摘要

单核非血红素铁酶生成高价铁(IV)-氧中间体,这些中间体在氧活化催化循环中实现代谢上重要的氧化转化。2003 年,研究人员首次在牛磺酸:α-酮戊二酸双加氧酶(TauD)的反应中通过光谱学特征鉴定了单核非血红素铁(IV)-氧中间体。该非血红素铁酶的铁活性中心与 2-His-1-羧酸盐面三角基序配位。同年,研究人员在模拟生物酶的研究中获得了第一个带有大环支撑配体的单核非血红素铁(IV)-氧配合物的第一个晶体结构,(TMC)Fe(IV)(O)(TMC = 1,4,8,11-四甲基-1,4,8,11-四氮杂环十四烷)。有了这些突破性的结果,许多其他研究都检查了在酶促反应中捕获的单核非血红素铁(IV)-氧中间体或在仿生反应中合成的单核非血红素铁(IV)-氧中间体。在过去的十年中,生物、生物无机和氧化化学领域的研究人员广泛研究了非血红素铁(IV)-氧物种的结构、光谱和反应性,从这些酶和仿生研究中获得了丰富的信息。本专题总结了合成单核非血红素铁(IV)-氧配合物在氧化反应中的反应性和机制,并考察了调节其反应性并改变其反应机制的因素。我们重点介绍了几种反应,包括有机和无机化合物的氧化、电子转移以及通过合成单核非血红素铁(IV)-氧配合物与水的氧原子交换。此外,我们最近观察到非血红素铁(IV)-氧和其他非血红素金属(IV)-氧配合物的 C-H 键活化不遵循已经在血红素系统中确立的 H 原子攫取/氧-回拨机制。在这些反应中,支撑配体对铁(IV)-氧配合物氧化能力的结构和电子效应是重要的。然而,具有八面体几何形状的非血红素铁(IV)-氧配合物(具有 S = 1 中间自旋态)或三角双锥(TBP)几何形状(具有 S = 2 高自旋态)的非血红素铁(IV)-氧配合物的自旋态差异不会导致仿生体系中反应性的显著变化。因此,非血红素铁酶中铁(IV)-氧物种的高自旋态的重要性仍未得到解释。我们还讨论了轴向和赤道配体以及氧化还原惰性金属离子和质子与铁-氧部分的结合如何影响非血红素铁(IV)-氧配合物的反应性。我们强调了这些变化如何在氧原子转移和电子转移反应中显著增强非血红素金属(IV)-氧配合物的氧化能力。本专题展示了过去 10 年中对单核非血红素铁(IV)-氧中间体化学理解的重大进展。

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