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碳水化合物连续溶剂化计算的优化参数。

Optimized parameters for continuum solvation calculations with carbohydrates.

作者信息

Green David F

机构信息

Department of Applied Mathematics and Statistics, Stony Brook University, Stony Brook, New York 11794-3600, USA.

出版信息

J Phys Chem B. 2008 Apr 24;112(16):5238-49. doi: 10.1021/jp709725b. Epub 2008 Apr 3.

Abstract

Continuum solvent models have been shown to be an efficient method for the calculation of the energetics of biomolecules in solution. However, for these methods to produce accurate results, an appropriate set of atomic radii or volumes is needed. While these have been developed for proteins and nucleic acids, the same is not true of carbohydrates. Here, a set of optimized parameters for continuum solvation calculations of carbohydrates in conjunction with the Carbohydrate Solution Force Field are presented. Explicit solvent free-energy perturbation simulations were performed on a set of hexapyranose sugars and used to fit atomic radii for Poisson-Boltzmann and generalized-Born calculations, and to fit atomic volumes for use with the analytical continuum electrostatics model. The solvation energetics computed with the optimized radii and a Poisson-Boltzmann model show remarkable agreement with explicit solvent simulation, with a root-mean-square error of 1.19 kcal/mol over a large test set of sugars in many conformations. The generalized-Born model gives slightly poorer agreement, but still correlates very strongly, with an error of 1.69 kcal/mol. The analytical continuum electrostatics model correlates well with the explicit solvent results, but gives a larger error of 4.71 kcal/mol. The remarkable agreement between the solvation free energies computed in explicit and implicit solvent provides strong motivation for the use of implicit solvent models in the simulation of carbohydrate-containing systems.

摘要

连续介质溶剂模型已被证明是计算溶液中生物分子能量学的一种有效方法。然而,要使这些方法产生准确的结果,需要一组合适的原子半径或体积。虽然这些已针对蛋白质和核酸开发出来,但对于碳水化合物并非如此。在此,提出了一组与碳水化合物溶液力场相结合的用于碳水化合物连续介质溶剂化计算的优化参数。对一组六吡喃糖进行了显式溶剂自由能微扰模拟,并用于拟合泊松 - 玻尔兹曼和广义玻恩计算的原子半径,以及用于分析连续介质静电模型的原子体积。用优化后的半径和泊松 - 玻尔兹曼模型计算的溶剂化能量学与显式溶剂模拟显示出显著的一致性,在许多构象的大量糖类测试集上,均方根误差为1.19千卡/摩尔。广义玻恩模型的一致性稍差,但相关性仍然很强,误差为1.69千卡/摩尔。分析连续介质静电模型与显式溶剂结果相关性良好,但误差较大,为4.71千卡/摩尔。在显式和隐式溶剂中计算的溶剂化自由能之间的显著一致性为在含碳水化合物系统的模拟中使用隐式溶剂模型提供了有力的依据。

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