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应用纯 Kohn-Sham 密度泛函理论电子结构方法于蛋白质分子时所面临的困难。

Difficulties in applying pure Kohn-Sham density functional theory electronic structure methods to protein molecules.

机构信息

Division of Scientific Computing, Department of Information Technology, Uppsala University, Uppsala, Sweden.

出版信息

J Phys Condens Matter. 2012 Feb 22;24(7):072202. doi: 10.1088/0953-8984/24/7/072202. Epub 2012 Jan 6.

DOI:10.1088/0953-8984/24/7/072202
PMID:22223667
Abstract

Self-consistency-based Kohn-Sham density functional theory (KS-DFT) electronic structure calculations with Gaussian basis sets are reported for a set of 17 protein-like molecules with geometries obtained from the Protein Data Bank. It is found that in many cases such calculations do not converge due to vanishing HOMO-LUMO gaps. A sequence of polyproline I helix molecules is also studied and it is found that self-consistency calculations using pure functionals fail to converge for helices longer than six proline units. Since the computed gap is strongly correlated to the fraction of Hartree-Fock exchange, test calculations using both pure and hybrid density functionals are reported. The tested methods include the pure functionals BLYP, PBE and LDA, as well as Hartree-Fock and the hybrid functionals BHandHLYP, B3LYP and PBE0. The effect of including solvent molecules in the calculations is studied, and it is found that the inclusion of explicit solvent molecules around the protein fragment in many cases gives a larger gap, but that convergence problems due to vanishing gaps still occur in calculations with pure functionals. In order to achieve converged results, some modeling of the charge distribution of solvent water molecules outside the electronic structure calculation is needed. Representing solvent water molecules by a simple point charge distribution is found to give non-vanishing HOMO-LUMO gaps for the tested protein-like systems also for pure functionals.

摘要

基于自洽的 Kohn-Sham 密度泛函理论 (KS-DFT) 电子结构计算,使用高斯基组,对一组来自蛋白质数据库的 17 种类似蛋白质的分子的几何形状进行了研究。结果发现,在许多情况下,由于 HOMO-LUMO 能隙趋于零,这种计算无法收敛。还研究了一系列聚脯氨酸 I 螺旋分子,发现对于超过六个脯氨酸单元的螺旋,使用纯泛函的自洽计算无法收敛。由于计算出的能隙与 Hartree-Fock 交换的分数密切相关,因此报告了使用纯和混合密度泛函的测试计算。测试的方法包括纯泛函 BLYP、PBE 和 LDA,以及 Hartree-Fock 和混合泛函 BHandHLYP、B3LYP 和 PBE0。研究了在计算中包括溶剂分子的影响,发现在许多情况下,在蛋白质片段周围包含显式溶剂分子会导致更大的能隙,但在纯泛函的计算中,由于能隙趋于零,仍会出现收敛问题。为了获得收敛的结果,需要对电子结构计算之外的溶剂水分子的电荷分布进行一些建模。研究发现,对于测试的类似蛋白质体系,即使使用纯泛函,用简单的点电荷分布来表示溶剂水分子也会给出非零的 HOMO-LUMO 能隙。

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