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黄素的分子力学模型。

A Molecular Mechanics Model for Flavins.

机构信息

Laboratoire d'Optique et Biosciences (CNRS UMR7645, INSERM U1182), Ecole Polytechnique, IP Paris, 91128, Palaiseau, France.

出版信息

J Comput Chem. 2019 Dec 15;40(32):2834-2842. doi: 10.1002/jcc.26061. Epub 2019 Aug 31.

Abstract

Flavin containing molecules form a group of important cofactors that assist a wide range of enzymatic reactions. Flavins use the redox-active isoalloxazine system, which is capable of one- and two-electron transfer reactions and can exist in several protonation states. In this work, molecular mechanics force field parameters compatible with the CHARMM36 all-atom additive force field were derived for biologically important flavins, including riboflavin, flavin mononucleotide, and flavin adenine dinucleotide. The model was developed for important protonation and redox states of the isoalloxazine group. The partial charges were derived using the CHARMM force field parametrization strategy, where quantum mechanics water-solute interactions are used to target optimization. In addition to monohydrate energies and geometries, electrostatic potential around the compound was used to provide additional restraints during the charge optimization. Taking into account the importance of flavin-containing molecules special attention was given to the quality of bonded terms. All bonded terms, including stiff terms and torsion angle parameters, were parametrized using exhaustive potential energy surface scans. In particular, the model reproduces well the butterfly motion of isoalloxazine in the oxidized and reduced forms as predicted by quantum mechanics in gas phase. The model quality is illustrated by simulations of four flavoproteins. Overall, the presented molecular mechanics model will be of utility to model flavin cofactors in different redox states. © 2019 Wiley Periodicals, Inc.

摘要

含黄素分子形成了一组重要的辅因子,它们协助了广泛的酶促反应。黄素利用氧化还原活性的异咯嗪系统,该系统能够进行单电子和双电子转移反应,并且可以存在于几种质子化状态中。在这项工作中,为生物上重要的黄素,包括核黄素、黄素单核苷酸和黄素腺嘌呤二核苷酸,推导出了与 CHARMM36 全原子加和力场兼容的分子力学力场参数。该模型针对异咯嗪基团的重要质子化和氧化还原状态进行了开发。部分电荷是使用 CHARMM 力场参数化策略推导出来的,其中量子力学水-溶质相互作用被用于靶向优化。除了一水合物的能量和几何形状外,还利用化合物周围的静电势能在电荷优化过程中提供附加约束。考虑到含黄素分子的重要性,特别注意了键合项的质量。所有键合项,包括刚性项和扭转角参数,都使用详尽的势能面扫描进行了参数化。特别是,该模型很好地再现了量子力学在气相中预测的氧化和还原形式中异咯嗪的蝶式运动。通过对四种黄素蛋白的模拟来说明模型的质量。总体而言,所提出的分子力学模型将可用于模拟不同氧化还原状态下的黄素辅因子。© 2019 威利期刊公司

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