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在平面波赝势框架下细胞色素 P450 化合物 I:硫醇配体铁(IV)-氧卟啉的 GGA 电子和几何结构。

Cytochrome P450 compound I in the plane wave pseudopotential framework: GGA electronic and geometric structure of thiolate-ligated iron(IV)-oxo porphyrin.

机构信息

Department of Physiology and Biophysics and The Massey Cancer Center, Virginia Commonwealth University, 401 College Street, Richmond, Virginia 23219-1540,USA.

出版信息

J Comput Chem. 2013 Jul 15;34(19):1647-60. doi: 10.1002/jcc.23311. Epub 2013 May 14.

DOI:10.1002/jcc.23311
PMID:23670855
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC3711018/
Abstract

The cytochromes P450 constitute a ubiquitous family of metalloenzymes, catalyzing manifold reactions of biological and synthetic importance via a thiolate-ligated iron-oxo (IV) porphyrin radical species denoted compound I (Cpd I). Experimental investigations have implicated this intermediate in a broad spectrum of biophysically interesting phenomena, further augmenting the importance of a Cpd I model system. Ab initio molecular dynamics, including Car-Parrinello and path integral methods, conjoin electronic structure theory with finite temperature simulation, affording tools most valuable to approach such enzymes. These methods are typically driven by density functional theory (DFT) in a plane-wave pseudopotential framework; however, existing studies of Cpd I have been restricted to localized Gaussian basis sets. The appropriate choice of density functional and pseudopotential for such simulations is accordingly not obvious. To remedy this situation, a systematic benchmarking of thiolate-ligated Cpd I is performed using several generalized-gradient approximation (GGA) functionals in the Martins-Troullier and Vanderbilt ultrasoft pseudopotential schemes. The resultant electronic and structural parameters are compared to localized-basis DFT calculations using GGA and hybrid density functionals. The merits and demerits of each scheme are presented in the context of reproducing existing experimental and theoretical results for Cpd I.

摘要

细胞色素 P450 构成了一个普遍存在的金属酶家族,通过一种称为化合物 I(Cpd I)的硫醇配体铁-氧(IV)卟啉自由基物种催化多种具有生物和合成重要性的反应。实验研究表明,这种中间体参与了广泛的生物物理有趣现象,进一步增加了 Cpd I 模型系统的重要性。从头算分子动力学,包括 Car-Parrinello 和路径积分方法,将电子结构理论与有限温度模拟相结合,为研究这些酶提供了最有价值的工具。这些方法通常由密度泛函理论(DFT)在平面波赝势框架中驱动;然而,对 Cpd I 的现有研究仅限于局域化的高斯基组。因此,对于这种模拟,适当的密度泛函和赝势选择并不明显。为了纠正这种情况,使用几种广义梯度逼近(GGA)泛函在 Martins-Troullier 和 Vanderbilt ultrasoft 赝势方案中对硫醇配体 Cpd I 进行了系统的基准测试。将得到的电子和结构参数与使用 GGA 和杂化密度泛函的局域基 DFT 计算进行比较。在再现 Cpd I 的现有实验和理论结果的背景下,提出了每种方案的优缺点。

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