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Reactivity of the Binuclear Non-Heme Iron Active Site of Δ~9 Desaturase Studied by Large-Scale Multireference Ab Initio Calculations

机译:大规模多参考从头算研究的Δ〜9去饱和酶双核非血红素铁活性位点的反应性

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摘要

The results of density matrix renormalization group complete active space self-consistent field (DMRG-CASSCF) and second-order perturbation theory (DMRG- CASPT2) calculations are presented on various structural alternatives for the O-O and first C-H activating step of the catalytic cycle of the binuclear nonheme iron enzyme Δ~9 desaturase. This enzyme is capable of inserting a double bond into an alkyl chain by double hydrogen (H) atom abstraction using molecular O_2. The reaction step studied here is presumably associated with the highest activation barrier along the full pathway; therefore, its quantitative assessment is of key importance to the understanding of the catalysis." The DMRG approach allows unprecedentedly large active spaces for the explicit correlation of electrons in the large part of the chemically important valence space, which is apparently conditio sine qua non for obtaining well-converged reaction energetics. The derived reaction mechanism involves protonation of the previously characterized 1,2-μ peroxy Fe~ⅢFe~Ⅲ (P) intermediate to a 1,1-μ hydroperoxy species, which abstracts an H atom from the C_(10) site of the substrate. An Fe~Ⅳ-oxo unit is generated concomitantly, supposedly capable of the second H atom abstraction from C_9. In addition, several popular DFT functionals were compared to the computed DMRG- CASPT2 data. Notably, many of these show a preference for heterolytic C-H cleavage, erroneously predicting substrate hydroxylation. This study shows that, despite its limitations, DMRG-CASPT2 is a significant methodological advancement toward the accurate computational treatment of complex bioinorganic systems, such as those with the highly open-shell diiron active sites.
机译:在OO的OO和第一CH活化步骤的各种结构替代方案上,给出了密度矩阵重正化组完整活性空间自一致场(DMRG-CASSCF)和二阶扰动理论(DMRG-CASPT2)的计算结果。双核非血红素铁酶Δ〜9去饱和酶。该酶能够通过使用分子O_2提取双氢(H)原子将双键插入烷基链。此处研究的反应步骤可能与整个途径中的最高活化障碍有关;因此,它的定量评估对于理解催化至关重要。” DMRG方法为化学重要价空间的大部分中的电子显式关联提供了前所未有的大活性空间,这显然是条件上必要的。得出的反应机理涉及将先前表征的1,2-μ过氧Fe〜ⅢFe〜Ⅲ(P)中间体质子化为1,1-μ加氢过氧物质,从而从C_中提取H原子。 (10)的底物位点,同时生成Fe〜Ⅳ-氧代单元,据推测能够从C_9提取出第二个H原子,此外,还将几种常用的DFT功能与计算所得的DMRG-CASPT2数据进行了比较。这些研究表明,偏好杂合CH裂解,错误地预测了底物的羟基化。这项研究表明,尽管有局限性,DMRG-CASPT2在方法学上还是一项重大进展致力于复杂生物无机系统(例如具有高度开放壳的二价铁活性位点的系统)的精确计算处理。

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  • 来源
    《Journal of the American Chemical Society》 |2014年第45期|15977-15991|共15页
  • 作者单位

    Institute of Organic Chemistry and Biochemistry, Academy of Sciences of the Czech Republic, Flemingovo namesti 2, 166 10 Praha 6, Czech Republic,Institute for Molecular Science, 38 Nishigo-Naka, Okazaki, Aichi 444-8585, Japan;

    Institute of Organic Chemistry and Biochemistry, Academy of Sciences of the Czech Republic, Flemingovo namesti 2, 166 10 Praha 6, Czech Republic,Institute of Organic Chemistry, Research Centre for Natural Sciences, Hungarian Academy of Sciences, P.O. Box 286, H-1519 Budapest, Hungary;

    Institute for Molecular Science, 38 Nishigo-Naka, Okazaki, Aichi 444-8585, Japan;

    Institute for Molecular Science, 38 Nishigo-Naka, Okazaki, Aichi 444-8585, Japan;

    Department of Chemistry, Stanford University, 333 Campus Drive, Stanford, California 94305-5080, United States;

    Institute of Organic Chemistry and Biochemistry, Academy of Sciences of the Czech Republic, Flemingovo namesti 2, 166 10 Praha 6, Czech Republic;

    Institute of Organic Chemistry and Biochemistry, Academy of Sciences of the Czech Republic, Flemingovo namesti 2, 166 10 Praha 6, Czech Republic,J. Heyrovsky Institute of Physical Chemistry, Academy of Sciences of the Czech Republic, Dolejskova 3, 182 23 Praha 8, Czech Republic;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);美国《化学文摘》(CA);
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  • 正文语种 eng
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  • 入库时间 2022-08-18 03:11:22

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