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ff19SB: Amino-Acid-Specific Protein Backbone Parameters Trained against Quantum Mechanics Energy Surfaces in Solution

Journal of Chemical Theory and Computation · 2019 · Vol. 16(1) · pp. 528–552
Chuan TianKoushik KasavajhalaKellon BelfonLauren RaguetteHe HuangAngela N. MiguesJohn D. BickelYuzhang WangJorge PincayQin WuCarlos Simmerling

Abstract

Molecular dynamics (MD) simulations have become increasingly popular in studying the motions and functions of biomolecules. The accuracy of the simulation, however, is highly determined by the molecular mechanics (MM) force field (FF), a set of functions with adjustable parameters to compute the potential energies from atomic positions. However, the overall quality of the FF, such as our previously published ff99SB and ff14SB, can be limited by assumptions that were made years ago. In the updated model presented here (ff19SB), we have significantly improved the backbone profiles for all 20 amino acids. We fit coupled φ/ψ parameters using 2D φ/ψ conformational scans for multiple amino acids, using as reference data the entire 2D quantum mechanics (QM) energy surface. We address the polarization inconsistency during dihedral parameter fitting by using both QM and MM in aqueous solution. Finally, we examine possible dependency of the backbone fitting on side chain rotamer. To extensively validate ff19SB parameters, and to compare to results using other Amber models, we have performed a total of ∼5 ms MD simulations in explicit solvent. Our results show that after amino-acid-specific training against QM data with solvent polarization, ff19SB not only reproduces the differences in amino-acid-specific Protein Data Bank (PDB) Ramachandran maps better but also shows significantly improved capability to differentiate amino-acid-dependent properties such as helical propensities. We also conclude that an inherent underestimation of helicity is present in ff14SB, which is (inexactly) compensated for by an increase in helical content driven by the TIP3P bias toward overly compact structures. In summary, ff19SB, when combined with a more accurate water model such as OPC, should have better predictive power for modeling sequence-specific behavior, protein mutations, and also rational protein design. Of the explicit water models tested here, we recommend use of OPC with ff19SB.

Protein Structure and DynamicsEnzyme Structure and FunctionMolecular spectroscopy and chiralityRamachandran plotDihedral angleMolecular dynamicsForce field (fiction)Molecular mechanicsBiomoleculeConformational isomerismChemistryAmino acidBiological system

MeSH terms

Amino AcidsPeptidesProtein ConformationProteinsQuantum TheoryThermodynamicsWaterProtein StabilityMolecular Dynamics Simulation

Funding

  • National Science Foundation
  • U.S. Department of Energy
  • Stony Brook University
  • National Institutes of Health
  • Office of Science
  • National Institute of General Medical Sciences
  • Basic Energy Sciences
  • Laufer Center for Physical and Quantitative Biology, Stony Brook University
  • Brookhaven National Laboratory
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Cited by
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References
Long-Time-Step Molecular Dynamics through Hydrogen Mass Repartitioning
Journal of Chemical Theory and Computation · 2015 · 1,462 citations
Comparison of simple potential functions for simulating liquid water
The Journal of Chemical Physics · 1983 · 41,376 citations
A new force field for molecular mechanical simulation of nucleic acids and proteins
Journal of the American Chemical Society · 1984 · 4,632 citations
A general purpose model for the condensed phases of water: TIP4P/2005
The Journal of Chemical Physics · 2005 · 3,883 citations
Modification of the Generalized Born Model Suitable for Macromolecules
The Journal of Physical Chemistry B · 2000 · 1,078 citations
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ff19SB: Amino-Acid-Specific Protein Backbone Parameters Trained against Quantum Mechanics Energy Surfaces in Solution · Scinovex