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首页> 外文期刊>Dalton transactions: An international journal of inorganic chemistry >Is density functional theory accurate for lytic polysaccharide monooxygenase enzymes?
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Is density functional theory accurate for lytic polysaccharide monooxygenase enzymes?

机译:密度函数理论是否准确用于裂解多糖单氧化酶酶?

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摘要

The lytic polysaccharide monooxygenase (LPMO) enzymes boost polysaccharide depolymerization through oxidative chemistry, which has fueled the hope for more energy-efficient production of biofuel. We have recently proposed a mechanism for the oxidation of the polysaccharide substrate (E. D. Hedegard and U. Ryde, Chem. Sci., 2018, 9, 3866-3880). In this mechanism, intermediates with superoxide, oxyl, as well as hydroxyl (i.e. [CuO2](+), [CuO](+) and [CuOH](2+)) cores were involved. These complexes can have both singlet and triplet spin states, and both spin-states may be important for how LPMOs function during catalytic turnover. Previous calculations on LPMOs have exclusively been based on density functional theory (DFT). However, different DFT functionals are known to display large differences for spin-state splittings in transition-metal complexes, and this has also been an issue for LPMOs. In this paper, we study the accuracy of DFT for spin-state splittings in superoxide, oxyl, and hydroxyl intermediates involved in LPMO turnover. As reference we employ multiconfigurational perturbation theory (CASPT2).
机译:裂解性多糖单氧化酶(LPMO)酶通过氧化化学促进多糖脱聚,这促进了更节能地生产生物燃料的希望。我们最近提出了一种用于氧化多糖基质的机制(E. D. Hedegard和U.Ryde,Chem。SCI。,2018,9,3866-3880)。在该机制中,涉及与超氧化物,氧基以及羟基(即[CuO 2](+),[CuO](+)和[CuOH](2+)核的中间体。这些配合物可以具有单态和三联旋转状态,并且旋转态都可能对催化转换期间的LPMOS功能有何重要意义。以前关于LPMOS的计算专门基于密度泛函理论(DFT)。然而,已知不同的DFT功能显示过渡金属配合物中的旋转状态分裂的大差异,这也是LPMOS的问题。在本文中,我们研究了LPMO转换中涉及的超氧化物,oxyl和羟基中间体中的旋转状态分裂的DFT的准确性。作为参考,我们采用多功能扰动理论(Caspt2)。

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