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用于模拟天然及硫代取代核酶中反应中间体的CHARMM力场参数。

CHARMM force field parameters for simulation of reactive intermediates in native and thio-substituted ribozymes.

作者信息

Mayaan Evelyn, Moser Adam, MacKerell Alexander D, York Darrin M

机构信息

Department of Chemistry, University of Minnesota, 207 Pleasant St. SE, Minneapolis, Minnesota 55455-0431, USA.

出版信息

J Comput Chem. 2007 Jan 30;28(2):495-507. doi: 10.1002/jcc.20474.

Abstract

Force field parameters specifically optimized for residues important in the study of RNA catalysis are derived from density-functional calculations, in a fashion consistent with the CHARMM27 all-atom empirical force field. Parameters are presented for residues that model reactive RNA intermediates and transition state analogs, thio-substituted phosphates and phosphoranes, and bound Mg(2+) and di-metal bridge complexes. Target data was generated via density-functional calculations at the B3LYP/6-311++G(3df,2p)// B3LYP/6-31++G(d,p) level. Partial atomic charges were initially derived from CHelpG electrostatic potential fitting and subsequently adjusted to be consistent with the CHARMM27 charges. Lennard-Jones parameters were determined to reproduce interaction energies with water molecules. Bond, angle, and torsion parameters were derived from the density-functional calculations and renormalized to maintain compatibility with the existing CHARMM27 parameters for standard residues. The extension of the CHARMM27 force field parameters for the nonstandard biological residues presented here will have considerable use in simulations of ribozymes, including the study of freeze-trapped catalytic intermediates, metal ion binding and occupation, and thio effects.

摘要

针对RNA催化研究中重要残基专门优化的力场参数源自密度泛函计算,其方式与CHARMM27全原子经验力场一致。给出了模拟反应性RNA中间体和过渡态类似物、硫代取代磷酸盐和膦、以及结合的Mg(2+)和双金属桥络合物的残基的参数。目标数据是通过在B3LYP/6 - 311++G(3df,2p)//B3LYP/6 - 31++G(d,p)水平的密度泛函计算生成的。部分原子电荷最初源自CHelpG静电势拟合,随后进行调整以与CHARMM27电荷一致。确定Lennard - Jones参数以重现与水分子的相互作用能。键、角和扭转参数源自密度泛函计算,并进行重新归一化以保持与标准残基的现有CHARMM27参数兼容。此处给出的CHARMM27力场参数对非标准生物残基的扩展将在核酶模拟中具有相当大的用途,包括对冷冻捕获的催化中间体、金属离子结合和占据以及硫代效应的研究。

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