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A semiempirical free energy force field with charge‐based desolvation

Journal of Computational Chemistry · 2007 · Vol. 28(6) · pp. 1145–1152
Ruth HueyGarrett M. MorrisArthur J. OlsonDavid S. Goodsell

Abstract

The authors describe the development and testing of a semiempirical free energy force field for use in AutoDock4 and similar grid-based docking methods. The force field is based on a comprehensive thermodynamic model that allows incorporation of intramolecular energies into the predicted free energy of binding. It also incorporates a charge-based method for evaluation of desolvation designed to use a typical set of atom types. The method has been calibrated on a set of 188 diverse protein-ligand complexes of known structure and binding energy, and tested on a set of 100 complexes of ligands with retroviral proteases. The force field shows improvement in redocking simulations over the previous AutoDock3 force field.

Protein Structure and DynamicsEnzyme Structure and FunctionComputational Drug Discovery MethodsForce field (fiction)Intramolecular forceChemistryDocking (animal)Atom (system on chip)Molecular dynamicsComputational chemistryBinding energyField (mathematics)Chemical physics

MeSH terms

AlgorithmsHydrogen BondingLigandsMathematical ComputingModels, ChemicalModels, MolecularMolecular ConformationProtein BindingProteinsSoftwareThermodynamicsWaterDrug DesignHIV ProteaseHIV Protease Inhibitors

Funding

  • National Institutes of Health
Citations
2,203
FWCI
42.22
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