Domain swapping is a consequence of minimal frustration
Open Access
- 10 September 2004
- journal article
- Published by Proceedings of the National Academy of Sciences in Proceedings of the National Academy of Sciences
- Vol. 101 (38) , 13786-13791
- https://doi.org/10.1073/pnas.0403724101
Abstract
The same energy landscape principles associated with the folding of proteins into their monomeric conformations should also describe how these proteins oligomerize into domain-swapped conformations. We tested this hypothesis by using a simplified model for the epidermal growth factor receptor pathway substrate 8 src homology 3 domain protein, both of whose monomeric and domain-swapped structures have been solved. The model, which we call the symmetrized Gō-type model, incorporates only information regarding the monomeric conformation in an energy function for the dimer to predict the domain-swapped conformation. A striking preference for the correct domain-swapped structure was observed, indicating that overall monomer topology is a main determinant of the structure of domain-swapped dimers. Furthermore, we explore the free energy surface for domain swapping by using our model to characterize the mechanism of oligomerization.Keywords
This publication has 36 references indexed in Scilit:
- Energy Landscape Analysis of Protein DimersIsrael Journal of Chemistry, 2004
- The Folding and Dimerization of HIV-1 Protease: Evidence for a Stable Monomer from SimulationsJournal of Molecular Biology, 2004
- Role of Water Mediated Interactions in Protein−Protein Recognition LandscapesJournal of the American Chemical Society, 2003
- De Novo Design of Foldable Proteins with Smooth Folding Funnel: Automated Negative Design and Experimental VerificationStructure, 2003
- Protein folding and three-dimensional domain swapping: astrained relationship?Current Opinion in Structural Biology, 2002
- Effect of pH and salt bridges on structural assembly: Molecular structures of the monomer and intertwined dimer of the Eps8 SH3 domainProtein Science, 2001
- Topological and energetic factors: what determines the structural details of the transition state ensemble and “en-route” intermediates for protein folding? an investigation for small globular proteinsJournal of Molecular Biology, 2000
- The folding pathway of the cell-cycle regulatory protein p13suc1: clues for the mechanism of domain swappingStructure, 2000
- Replica-exchange molecular dynamics method for protein foldingChemical Physics Letters, 1999
- THEORY OF PROTEIN FOLDING: The Energy Landscape PerspectiveAnnual Review of Physical Chemistry, 1997