A generalized approach to sampling backbone conformations with RosettaDock for CAPRI rounds 13–19
- 18 May 2010
- journal article
- research article
- Published by Wiley in Proteins-Structure Function and Bioinformatics
- Vol. 78 (15) , 3115-3123
- https://doi.org/10.1002/prot.22765
Abstract
In CAPRI rounds 13–19, the most native‐like structure predicted by RosettaDock resulted in two high, one medium, and one acceptable accuracy model out of 13 targets. The current rounds of CAPRI were especially challenging with many unbound and homology modeled starting structures. Novel docking methods, including EnsembleDock and SnugDock, allowed backbone conformational sampling during docking and enabled the creation of more accurate models. For Target 32, α‐amylase/subtilisin inhibitor‐subtilisin savinase, we sampled different backbone conformations at an interfacial loop to produce five high‐quality models including the most accurate structure submitted in the challenge (2.1 Å ligand rmsd, 0.52 Å interface rmsd). For Target 41, colicin‐immunity protein, we used EnsembleDock to sample the ensemble of nuclear magnetic resonance (NMR) models of the immunity protein to generate a medium accuracy structure. Experimental data identifying the catalytic residues at the binding interface for Target 40 (trypsin‐inhibitor) were used to filter RosettaDock global rigid body docking decoys to determine high accuracy predictions for the two distinct binding sites in which the inhibitor interacts with trypsin. We discuss our generalized approach to selecting appropriate methods for different types of docking problems. The current toolset provides some robustness to errors in homology models, but significant challenges remain in accommodating larger backbone uncertainties and in sampling adequately for global searches. Proteins 2010.Keywords
Funding Information
- National Institute of Health (R01-GM078221)
- U.C.B.S.A
This publication has 51 references indexed in Scilit:
- The structural and energetic basis for high selectivity in a high-affinity protein-protein interactionProceedings of the National Academy of Sciences, 2010
- The Ternary Structure of the Double-headed Arrowhead Protease Inhibitor API-A Complexed with Two Trypsins Reveals a Novel Reactive Site ConformationJournal of Biological Chemistry, 2009
- The structural basis of Arf effector specificity: the crystal structure of ARF6 in a complex with JIP4The EMBO Journal, 2009
- Conformer Selection and Induced Fit in Flexible Backbone Protein–Protein Docking Using Computational and NMR EnsemblesJournal of Molecular Biology, 2008
- Structure Prediction of Domain Insertion Proteins from Structures of Individual DomainsStructure, 2008
- Binding of Rac1, Rnd1, and RhoD to a Novel Rho GTPase Interaction Motif Destabilizes Dimerization of the Plexin-B1 Effector DomainPublished by Elsevier ,2007
- Prediction of the structure of symmetrical protein assembliesProceedings of the National Academy of Sciences, 2007
- ROSETTALIGAND: Protein–small molecule docking with full side‐chain flexibilityProteins-Structure Function and Bioinformatics, 2006
- The Protein Data BankNucleic Acids Research, 2000
- SWISS‐MODEL and the Swiss‐Pdb Viewer: An environment for comparative protein modelingElectrophoresis, 1997