Macromolecular Modeling with Rosetta
Top Cited Papers
- 1 June 2008
- journal article
- review article
- Published by Annual Reviews in Annual Review of Biochemistry
- Vol. 77 (1) , 363-382
- https://doi.org/10.1146/annurev.biochem.77.062906.171838
Abstract
Advances over the past few years have begun to enable prediction and design of macromolecular structures at near-atomic accuracy. Progress has stemmed from the development of reasonably accurate and efficiently computed all-atom potential functions as well as effective conformational sampling strategies appropriate for searching a highly rugged energy landscape, both driven by feedback from structure prediction and design tests. A unified energetic and kinematic framework in the Rosetta program allows a wide range of molecular modeling problems, from fibril structure prediction to RNA folding to the design of new protein interfaces, to be readily investigated and highlights areas for improvement. The methodology enables the creation of novel molecules with useful functions and holds promise for accelerating experimental structural inference. Emerging connections to crystallographic phasing, NMR modeling, and lower-resolution approaches are described and critically assessed.Keywords
This publication has 91 references indexed in Scilit:
- Structure prediction for CASP7 targets using extensive all-atom refinement with Rosetta@homeProteins-Structure Function and Bioinformatics, 2007
- Energetics of Protein FoldingPublished by Elsevier ,2007
- Free modeling with Rosetta in CASP6Proteins-Structure Function and Bioinformatics, 2005
- Toward High-Resolution de Novo Structure Prediction for Small ProteinsScience, 2005
- Structure of the cross-β spine of amyloid-like fibrilsNature, 2005
- Protein Structure Prediction Using RosettaPublished by Elsevier ,2004
- A protein-folding reaction under kinetic controlNature, 1992
- Dominant forces in protein foldingBiochemistry, 1990
- Some Factors in the Interpretation of Protein DenaturationAdvances in Protein Chemistry, 1959
- Molecular Structure of Nucleic Acids: A Structure for Deoxyribose Nucleic AcidNature, 1953