A point‐charge force field for molecular mechanics simulations of proteins based on condensed‐phase quantum mechanical calculations
University of Delaware · University of California, San Francisco · +2 more institutions
Abstract
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…
Citation impact
- FWCI
- 9.73
- Percentile
- 100%
- References
- 58
Authors
13Topics & keywords
- Force field (fiction)
- Dipole
- Molecular dynamics
- Chemistry
- Quantum
- Point particle
- Torsion (gastropod)
- Molecular mechanics
- Affordable and clean energy