A point-charge force field for molecular mechanics simulations of proteins based on condensed-phase quantum mechanical calculations

被引:3949
作者
Duan, Y [1 ]
Wu, C
Chowdhury, S
Lee, MC
Xiong, GM
Zhang, W
Yang, R
Cieplak, P
Luo, R
Lee, T
Caldwell, J
Wang, JM
Kollman, P
机构
[1] Univ Delaware, Dept Chem & Biochem, Newark, DE 19716 USA
[2] Accelrys Inc, San Diego, CA 92121 USA
[3] Univ Calif San Francisco, Dept Pharmaceut Chem, San Francisco, CA 94143 USA
关键词
point-charge force field; quantum mechanical calculations; molecular mechanics simulations;
D O I
10.1002/jcc.10349
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
Molecular mechanics models have been applied extensively to study the dynamics of proteins and nucleic acids. Here we report the development of a third-generation point-charge all-atom force field for proteins. Following the earlier approach of Cornell et al., the charge set was obtained by fitting to the electrostatic potentials of dipeptides calculated using B3LYP/cc-pVTZ//HF/6-31G** quantum mechanical methods. The main-chain torsion parameters were obtained by fitting to the energy profiles of Ace-Ala-Nme and Ace-Gly-Nme di-peptides calculated using MP2/cc-PVTZ//HF/6-31G** quantum mechanical methods. All other parameters were taken from the existing AMBER data base. The major departure from previous force fields is that all quantum mechanical calculations were done in the condensed phase with continuum solvent models and an effective dielectric constant of epsilon = 4. We anticipate that this force field parameter set will address certain critical short comings of previous force fields in condensed-phase simulations of proteins. Initial tests on peptides demonstrated a high-degree of similarity between the calculated and the statistically measured Ramanchandran maps for both Ace-Gly-Nme and Ace-Ala-Nme di-peptides. Some highlights of Our results include (1) well-preserved balance between the extended and helical region distributions, and (2) favorable type-II poly-proline helical region in agreement with recent experiments. Backward compatibility between the new and Cornell et al. charge sets. as judged by overall agreement between dipole moments, allows a smooth transition to the new force field in the area of ligand-binding calculations. Test simulations on a large set of proteins are also discussed. (C) 2003 Wiley Periodicals, Inc.
引用
收藏
页码:1999 / 2012
页数:14
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