ABSINTH: A new continuum solvation model for simulations of polypeptides in aqueous solutions

溶剂化 隐溶剂化 化学 力场(虚构) 水溶液 溶剂模型 计算化学 蒙特卡罗方法 化学物理 分子动力学 溶剂 折叠(DSP实现) 热力学 物理化学 物理 有机化学 量子力学 工程类 电气工程 统计 数学
作者
Andreas Vitalis,Rohit V. Pappu
出处
期刊:Journal of Computational Chemistry [Wiley]
卷期号:30 (5): 673-699 被引量:382
标识
DOI:10.1002/jcc.21005
摘要

A new implicit solvation model for use in Monte Carlo simulations of polypeptides is introduced. The model is termed ABSINTH for self-Assembly of Biomolecules Studied by an Implicit, Novel, and Tunable Hamiltonian. It is designed primarily for simulating conformational equilibria and oligomerization reactions of intrinsically disordered proteins in aqueous solutions. The paradigm for ABSINTH is conceptually similar to the EEF1 model of Lazaridis and Karplus (Proteins 1999, 35, 133). In ABSINTH, the transfer of a polypeptide solute from the gas phase into a continuum solvent is the sum of a direct mean field interaction (DMFI), and a term to model the screening of polar interactions. Polypeptide solutes are decomposed into a set of distinct solvation groups. The DMFI is a sum of contributions from each of the solvation groups, which are analogs of model compounds. Continuum-mediated screening of electrostatic interactions is achieved using a framework similar to the one used for the DMFI. Promising results are shown for a set of test cases. These include the calculation of NMR coupling constants for short peptides, the assessment of the thermal stability of two small proteins, reversible folding of both an alpha-helix and a beta-hairpin forming peptide, and the polymeric properties of intrinsically disordered polyglutamine peptides of varying lengths. The tests reveal that the computational expense for simulations with the ABSINTH implicit solvation model increase by a factor that is in the range of 2.5-5.0 with respect to gas-phase calculations.
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