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首页> 外文期刊>Chemphyschem: A European journal of chemical physics and physical chemistry >The reaction mechanism of cytochrome P450 NO reductase: A detailed quantum mechanics/molecular mechanics study
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The reaction mechanism of cytochrome P450 NO reductase: A detailed quantum mechanics/molecular mechanics study

机译:细胞色素P450 NO还原酶的反应机理:详细的量子力学/分子力学研究

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A detailed QM/MM study on the reaction mechanism of Cytochrome P450 NO reductase is reported. Two reaction pathways connecting the two well-characterized intermediates as well as two putative intermediates that represent the unknown third intermediate are explored, with emphasis on the unusual direct reduction of the enzymatic active site by the cofactor NADH. Activation barriers and kinetic isotope effect are calculated and reveal that reduction of the NO-bound species occurs in form of a hydride ion transfer. Furthermore, the impact of different hydrogen bonds in the active site to binding and reactivity of NADH is explored. The calculated kinetic and thermodynamic properties for both modelled pathways are used for the kinetic simulation of the entire reaction course. It is thus shown that the unknown key intermediate is the singlet diradical Fe~(III)-NHOH~·. It is also found that the mechanism of the N-N bond formation is spin-recoupling, which is only possible due to the diradical character of the key intermediate.
机译:报告了有关细胞色素P450 NO还原酶反应机理的详细QM / MM研究。探索了连接两个充分表征的中间体以及代表未知的第三中间体的两个假定中间体的两个反应途径,重点是辅因子NADH对酶活性位点的不寻常直接还原。计算出了活化势垒和动力学同位素效应,并揭示了以氢离子转移的形式发生的NO结合物种的还原。此外,研究了活性位点中不同氢键对NADH结合和反应性的影响。两种模拟途径的计算动力学和热力学性质都用于整个反应过程的动力学模拟。因此表明,未知的关键中间体是单重双自由基Fe〜(III)-NHOH〜·。还发现N-N键形成的机理是自旋再偶联,这仅由于关键中间体的双自由基特性才可能。

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