Statistical mechanics of a correlated energy landscape model for protein folding funnels
- 15 February 1997
- journal article
- Published by AIP Publishing in The Journal of Chemical Physics
- Vol. 106 (7) , 2932-2948
- https://doi.org/10.1063/1.473355
Abstract
Energetic correlations due to polymeric constraints and the locality of interactions, in conjunction with the apriori specification of the existence of a particularly low energy state, provides a method of introducing the aspect of minimal frustration to the energy landscapes of random heteropolymers. The resulting funnelled landscape exhibits both a phase transition from a molten globule to a folded state, and the heteropolymeric glass transition in the globular state. We model the folding transition in the self-averaging regime, which together with a simple theory of collapse allows us to depict folding as a double-well free energy surface in terms of suitable reaction coordinates. Observed trends in barrier positions and heights with protein sequence length, stability, and temperature are explained within the context of the model. We also discuss the new physics which arises from the introduction of explicitly cooperative many-body interactions, as might arise from side-chain packing and non-additive hydrophobic forces. Denaturation curves similar to those seen in simulations are predicted from the model.Comment: 15 pages,submitted to J. Chem. PhyKeywords
All Related Versions
This publication has 38 references indexed in Scilit:
- Correlated energy landscape model for finite, random heteropolymersPhysical Review E, 1996
- Local Conformational Signals and the Statistical Thermodynamics of Collapsed Helical ProteinsJournal of Molecular Biology, 1996
- Protein Folding Triggered by Electron TransferScience, 1996
- The Structure of the Transition State for Folding of Chymotrypsin Inhibitor 2 Analysed by Protein Engineering Methods: Evidence for a Nucleation-condensation Mechanism for Protein FoldingJournal of Molecular Biology, 1995
- First-Principles Calculation of the Folding Free Energy of a Three-Helix Bundle ProteinScience, 1995
- Self-avoiding-walk contacts and random-walk self-intersections in variable dimensionalityPhysical Review E, 1995
- Kinetics of Protein Folding: A Lattice Model Study of the Requirements for Folding to the Native StateJournal of Molecular Biology, 1994
- Generalized protein tertiary structure recognition using associative memory hamiltoniansJournal of Molecular Biology, 1991
- The Nonergodic (“Spin-Glass–Like”) Phase of Heteropolymer with Quenched Disordered Sequence of LinksEurophysics Letters, 1989
- Theory of Elastic Mechanisms in Fibrous ProteinsJournal of the American Chemical Society, 1956