| Literature DB >> 28378374 |
Robert M Parrish1, Doree F Sitkoff2, Daniel L Cheney2, C David Sherrill1.
Abstract
The study of noncovalent interactions, notably including drug-protein binding, relies heavily on the language of localized functional group contacts: hydrogen bonding, π-π interactions, CH-π contacts, halogen bonding, etc. Applying the state-of-the-art functional group symmetry-adapted perturbation theory (F-SAPT) to an important question of chloro versus methyl aryl substitution in factor Xa inhibitor drugs, we find that a localized contact model provides an incorrect picture for the origin of the enhancement of chloro-containing ligands. Instead, the enhancement is found to originate from many intermediate-range contacts distributed throughout the binding pocket, particularly including the peptide bonds in the protein backbone. The contributions from these contacts are primarily electrostatic in nature, but require ab initio computations involving nearly the full drug-protein pocket system to be accurately quantified.Entities:
Keywords: ab initio calculations; drug design; noncovalent interactions; peptides
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Year: 2017 PMID: 28378374 DOI: 10.1002/chem.201701031
Source DB: PubMed Journal: Chemistry ISSN: 0947-6539 Impact factor: 5.236