Modifying the OPLS‐AA force field to improve hydration free energies for several amino acid side chains using new atomic charges and an off‐plane charge model for aromatic residues
- 28 December 2006
- journal article
- research article
- Published by Wiley in Journal of Computational Chemistry
- Vol. 28 (3) , 689-697
- https://doi.org/10.1002/jcc.20560
Abstract
The hydration free energies of amino acid side chains are an important determinant of processes that involve partitioning between different environments, including protein folding, protein complex formation, and protein–membrane interactions. Several recent papers have shown that calculated hydration free energies for polar and aromatic residues (Trp, His, Tyr, Asn, Gln, Asp, Glu) in several common molecular dynamics force fields differ significantly from experimentally measured values. We have attempted to improve the hydration energies for these residues by modifying the partial charges of the OPLS-AA force field based on natural population analysis of density functional theory calculations. The resulting differences between calculated hydration free energies and experimental results for the seven side chain analogs are less than 0.1 kcal/mol. Simulations of the synthetic Trp-rich peptide Trpzip2 show that the new charges lead to significantly improved geometries for interacting Trp-side chains. We also investigated an off-plane charge model for aromatic rings that more closely mimics their electronic configuration. This model results in an improved free energy of hydration for Trp and a somewhat altered benzene–sodium potential of mean force with a more favorable energy for direct benzene–sodium contact. © 2006 Wiley Periodicals, Inc. J Comput Chem 28: 689–697, 2007Keywords
This publication has 40 references indexed in Scilit:
- Water as a Conformational Editor in Protein FoldingJournal of Molecular Biology, 2004
- A biomolecular force field based on the free enthalpy of hydration and solvation: The GROMOS force‐field parameter sets 53A5 and 53A6Journal of Computational Chemistry, 2004
- Accuracy of free energies of hydration using CM1 and CM3 atomic chargesJournal of Computational Chemistry, 2004
- Calculation of the water–cyclohexane transfer free energies of neutral amino acid side‐chain analogs using the OPLS all‐atom force fieldJournal of Computational Chemistry, 2003
- Extremely precise free energy calculations of amino acid side chain analogs: Comparison of common molecular mechanics force fields for proteinsThe Journal of Chemical Physics, 2003
- Calculation of the free energy of solvation for neutral analogs of amino acid side chainsJournal of Computational Chemistry, 2002
- A Second Generation Force Field for the Simulation of Proteins, Nucleic Acids, and Organic MoleculesJournal of the American Chemical Society, 1995
- Dominant forces in protein foldingBiochemistry, 1990
- Comparing the polarities of the amino acids: side-chain distribution coefficients between the vapor phase, cyclohexane, 1-octanol, and neutral aqueous solutionBiochemistry, 1988
- Affinities of amino acid side chains for solvent waterBiochemistry, 1981