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首页> 外文期刊>Archives of Biochemistry and Biophysics >Manganese substituted Compound i of cytochrome P450 biomimetics: A comparative reactivity study of MnV-oxo versus MnIV-oxo species
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Manganese substituted Compound i of cytochrome P450 biomimetics: A comparative reactivity study of MnV-oxo versus MnIV-oxo species

机译:锰取代的细胞色素P450仿生化合物的化合物i:MnV-氧代与MnIV-氧代物种的比较反应性研究

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摘要

Manganese-oxo porphyrins have been well studied as biomimetic models of cytochromes P450 and are known to be able to catalyze substrate hydroxylation reactions. Recent experimental studies [J.Y. Lee, Y.-M. Lee, H. Kotani, W. Nam, S. Fukuzumi, Chem. Commun. (2009) 704] showed that Mn(V)-oxo porphyrins react rapidly with 10-methyl-9,10-dihydroacridine (AcrH2) via a proton-coupled-electron-transfer followed by an electron transfer. In this work, we present a computational study on the reactivity patterns of Mn(V)-oxo and Mn(IV)-oxo with respect to AcrH2. This study shows that although both oxidants are capable of hydroxylating AcrH2, the MnV-oxo species is the more active oxidant. We have generalized these observations with thermodynamic cycles that explain the reaction mechanisms and electron transfer processes. For the MnV-oxo mechanism the reactions proceed with a fast spin state crossing from the ground state singlet to the triplet spin state prior to a hydrogen atom transfer followed by another electron transfer. The present results are fully consistent with previous studies on iron-oxo porphyrins and manganese-oxo porphyrins and shows that the interplay of low lying singlet and triplet spin state surfaces influences the reaction mechanisms and kinetics.
机译:锰-氧卟啉已作为细胞色素P450的仿生模型进行了充分的研究,并且已知能够催化底物羟基化反应。最近的实验研究[J.Y.李永- Lee H. Kotani,W。Nam,S。Fukuzumi,化学。公社(2009)704]表明Mn(V)-氧代卟啉通过质子偶联电子转移与10-甲基-9,10-二氢ac啶(AcrH2)迅速反应,随后进行电子转移。在这项工作中,我们对Mn(V)-oxo和Mn(IV)-oxo相对于AcrH2的反应模式进行了计算研究。这项研究表明,尽管两种氧化剂都能够将AcrH2羟基化,但MnV-氧代物质是更具活性的氧化剂。我们用热力学循环概括了这些观察结果,这些反应解释了反应机理和电子转移过程。对于MnV-氧代机理,反应以快速自旋态进行,该自旋态从基态单重态转变为三重态自旋态,然后转移氢原子,然后进行另一电子转移。目前的结果与先前对铁-氧卟啉和锰-氧卟啉的研究完全一致,并表明低单线态和三线态自旋态表面的相互作用影响了反应机理和动力学。

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