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用二维红外光谱研究氢化酶活性位点模型的动态灵活性。

Dynamic Flexibility of Hydrogenase Active Site Models Studied with 2D-IR Spectroscopy.

作者信息

Eckert Peter A, Kubarych Kevin J

机构信息

Department of Chemistry, University of Michigan , 930 N. University Ave., Ann Arbor, Michigan 48109, United States.

出版信息

J Phys Chem A. 2017 Jan 26;121(3):608-615. doi: 10.1021/acs.jpca.6b11962. Epub 2017 Jan 12.

DOI:10.1021/acs.jpca.6b11962
PMID:28032999
Abstract

Hydrogenase enzymes enable organisms to use H as an energy source, having evolved extremely efficient biological catalysts for the reversible oxidation of molecular hydrogen. Small-molecule mimics of these enzymes provide both simplified models of the catalysis reactions and potential artificial catalysts that might be used to facilitate a hydrogen economy. We have studied two diiron hydrogenase mimics, μ-pdt-[Fe(CO)] and μ-edt-[Fe(CO)] (pdt = propanedithiolate, edt = ethanedithiolate), in a series of alkane solvents and have observed significant ultrafast spectral dynamics using two-dimensional infrared (2D-IR) spectroscopy. Since solvent fluctuations in nonpolar alkanes do not lead to substantial electrostatic modulations in a solute's vibrational mode frequencies, we attribute the spectral diffusion dynamics to intramolecular flexibility. The intramolecular origin is supported by the absence of any measurable solvent viscosity dependence, indicating that the frequency fluctuations are not coupled to the solvent motional dynamics. Quantum chemical calculations reveal a pronounced coupling between the low-frequency torsional rotation of the carbonyl ligands and the terminal CO stretching vibrations. The flexibility of the CO ligands has been proposed to play a central role in the catalytic reaction mechanism, and our results highlight that the CO ligands are highly flexible on a picosecond time scale.

摘要

氢化酶使生物体能够将氢气用作能源,它进化出了用于分子氢可逆氧化的极其高效的生物催化剂。这些酶的小分子模拟物既提供了催化反应的简化模型,也提供了可能用于促进氢经济的潜在人工催化剂。我们在一系列烷烃溶剂中研究了两种双铁氢化酶模拟物μ-pdt-[Fe(CO)]和μ-edt-[Fe(CO)](pdt = 丙烷二硫醇盐,edt = 乙二硫醇盐),并使用二维红外(2D-IR)光谱观察到了显著的超快光谱动力学。由于非极性烷烃中的溶剂波动不会导致溶质振动模式频率的显著静电调制,我们将光谱扩散动力学归因于分子内的灵活性。分子内起源得到了不存在任何可测量的溶剂粘度依赖性的支持,这表明频率波动与溶剂运动动力学没有耦合。量子化学计算揭示了羰基配体的低频扭转旋转与末端CO伸缩振动之间存在明显的耦合。有人提出CO配体的灵活性在催化反应机制中起核心作用,我们的结果突出表明CO配体在皮秒时间尺度上具有高度灵活性。

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