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Funnels, pathways, and the energy landscape of protein folding: A synthesis

Proteins Structure Function and Bioinformatics · 1995 · Vol. 21(3) · pp. 167–195
Joseph D. BryngelsonJosé N. OnuchicNicholas D. SocciPeter G. Wolynes

Abstract

The understanding, and even the description of protein folding is impeded by the complexity of the process. Much of this complexity can be described and understood by taking a statistical approach to the energetics of protein conformation, that is, to the energy landscape. The statistical energy landscape approach explains when and why unique behaviors, such as specific folding pathways, occur in some proteins and more generally explains the distinction between folding processes common to all sequences and those peculiar to individual sequences. This approach also gives new, quantitative insights into the interpretation of experiments and simulations of protein folding thermodynamics and kinetics. Specifically, the picture provides simple explanations for folding as a two-state first-order phase transition, for the origin of metastable collapsed unfolded states and for the curved Arrhenius plots observed in both laboratory experiments and discrete lattice simulations. The relation of these quantitative ideas to folding pathways, to uniexponential vs. multiexponential behavior in protein folding experiments and to the effect of mutations on folding is also discussed. The success of energy landscape ideas in protein structure prediction is also described. The use of the energy landscape approach for analyzing data is illustrated with a quantitative analysis of some recent simulations, and a qualitative analysis of experiments on the folding of three proteins. The work unifies several previously proposed ideas concerning the mechanism protein folding and delimits the regions of validity of these ideas under different thermodynamic conditions.

Protein Structure and DynamicsTheoretical and Computational PhysicsSpectroscopy and Quantum Chemical StudiesEnergy landscapeProtein foldingLattice proteinFolding (DSP implementation)Downhill foldingMetastabilityStatistical physicsChemistryPhysicsPhi value analysis

MeSH terms

Amino Acid SequenceChemistry, PhysicalComputer SimulationData Interpretation, StatisticalKineticsModels, ChemicalMolecular Sequence DataProtein ConformationProteinsThermodynamicsProtein BiosynthesisProtein FoldingChemical Phenomena
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References
Principles of polymer chemistry
Choice Reviews Online · 1995 · 15,274 citations
<i>Spin Glass Theory and Beyond</i>
Physics Today · 1988 · 2,669 citations
Spin glasses: Experimental facts, theoretical concepts, and open questions
Reviews of Modern Physics · 1986 · 5,107 citations
Optimization by Simulated Annealing
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