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PMID: 15238009 Published · ppublish English Journal Article Research Support, Non-U.S. Gov't

Structural mining: self-consistent design on flexible protein-peptide docking and transferable binding affinity potential.

Journal of the American Chemical Society ·Vol. 126 ·No. 27 ·2004-07-14 ·Pages 8515-28

Liu Z, Dominy BN, Shakhnovich EI

Abstract

A flexible protein-peptide docking method has been designed to consider not only ligand flexibility but also the flexibility of the protein. The method is based on a Monte Carlo annealing process. Simulations with a distance root-mean-square (dRMS) virtual energy function revealed that the flexibility of protein side chains was as important as ligand flexibility for successful protein-peptide docking. On the basis of mean field theory, a transferable potential was designed to evaluate distance-dependent protein-ligand interactions and atomic solvation energies. The potential parameters were developed using a self-consistent process based on only 10 known complex structures. The effectiveness of each intermediate potential was judged on the basis of a Z score, approximating the gap between the energy of the native complex and the average energy of a decoy set. The Z score was determined using experimentally determined native structures and decoys generated by docking with the intermediate potentials. Using 6600 generated decoys and the Z score optimization criterion proposed in this work, the developed potential yielded an acceptable correlation of R(2) = 0.77, with binding free energies determined for known MHC I complexes (Class I Major Histocompatibility protein HLA-A(*)0201) which were not present in the training set. Test docking on 25 complexes further revealed a significant correlation between energy and dRMS, important for identifying native-like conformations. The near-native structures always belonged to one of the conformational classes with lower predicted binding energy. The lowest energy docked conformations are generally associated with near-native conformations, less than 3.0 Angstrom dRMS (and in many cases less than 1.0 Angstrom) from the experimentally determined structures.

MeSH Terms
Algorithms Amino Acid Sequence Computer Simulation HLA-A Antigens/chemistry,metabolism HLA-A2 Antigen Kinetics Models, Molecular Molecular Sequence Data Monte Carlo Method Peptides/chemistry,metabolism Protein Binding Protein Conformation Proteins/chemistry,metabolism Solutions Thermodynamics src Homology Domains
Chemicals
HLA-A Antigens HLA-A*02:01 antigen HLA-A2 Antigen Peptides Proteins Solutions
Authors & Affiliations
3 authors, click to expand affiliations / ORCID
Liu Zhijie
Department of Chemistry and Chemical Biology, Harvard University, 12 Oxford Street, Cambridge, Massachusetts 02138, USA.
Dominy Brian N
Shakhnovich Eugene I
Article Info
Journal
Journal of the American Chemical Society
Abbr.
J Am Chem Soc
ISSN
0002-7863
Published
2004-07-14
Pages
8515-28
Language
English
Region
United States
NLM ID
7503056
Subset
IM
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