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Theoretical study of the biologically important dioxo diiron diamond core structures

机译:具有重要生物意义的二氧二铁金刚石核心结构的理论研究

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摘要

Density functional theory calculations were used to investigate synthetic complexes with diiron dioxo diamond cores and models for intermediates in the catalytic cycle of methane monooxygenase (MMO). The synthetic complexes share an antiferromagnetically coupled diiron dioxo/hydroxo diamond core structure with the oxidized and reduced intermediates (Hox and Hred, respectively) of MMO. The DFT (B3P86) calculations on model complexes of the synthetic models, with ferromagnetic coupling, reproduce the crystal structure data to within 0.05 Å and 5° for the diamond core parameters. The crystal structures of Hox extracted from two different bacteria (Bath and OB3b) indicate that Hox has either two bridging hydroxy ligands or one hydroxy and one water bridge. The B3P86 calculations strongly suggest that both bridging ligands in Hox are hydroxy groups. The carboxylate shift established in the crystal structures of Hred was calculated to be a minimum at the BP86 level of theory.
机译:密度泛函理论计算用于研究具有二铁二氧杂钻石芯的合成配合物和甲烷单加氧酶(MMO)催化循环中中间体的模型。合成的复合物与MMO的氧化和还原中间体(分别为Hox 和Hred )共享反铁磁耦合的二铁二氧杂/羟基钻石芯结构。通过铁磁耦合对合成模型的模型配合物进行DFT(B3P86)计算,可将金刚石核心参数的晶体结构数据复制到0.05Å和5°范围内。从两种不同细菌(Bath和OB3b)中提取的Hox 的晶体结构表明,Hox 具有两个桥连的羟基配体或一个羟基和一个水桥。 B3P86的计算强烈表明,Hox 中的两个桥联配体都是羟基。在理论的BP86水平上,Hred 的晶体结构中建立的羧酸盐位移被计算为最小。

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