Protein Folding Kinetics: Barrier Effects in Chemical and Thermal Denaturation Experiments
- 10 April 2007
- journal article
- research article
- Published by American Chemical Society (ACS) in Journal of the American Chemical Society
- Vol. 129 (17) , 5673-5682
- https://doi.org/10.1021/ja0689740
Abstract
Recent experimental work on fast protein folding brings about an intriguing paradox. Microsecond-folding proteins are supposed to fold near or at the folding speed limit (downhill folding), but yet their folding behavior seems to comply with classical two-state analyses, which imply the crossing of high free energy barriers. However, close inspection of chemical and thermal denaturation kinetic experiments in fast-folding proteins reveals systematic deviations from two-state behavior. Using a simple one-dimensional free energy surface approach we find that such deviations are indeed diagnostic of marginal folding barriers. Furthermore, the quantitative analysis of available fast-kinetic data indicates that many microsecond-folding proteins fold downhill in native conditions. All of these proteins are then promising candidates for an atom-by-atom analysis of protein folding using nuclear magnetic resonance.1 We also find that the diffusion coefficient for protein folding is strongly temperature dependent, corresponding to an activation energy of ∼1 kJ·mol-1 per protein residue. As a consequence, the folding speed limit at room temperature is about an order of magnitude slower than the ∼ 1 μs estimates from high-temperature T-jump experiments. Our analysis is quantitatively consistent with the available thermodynamic and kinetic data on slow two-state folding proteins and provides a straightforward explanation for the apparent fast-folding paradox.Keywords
This publication has 63 references indexed in Scilit:
- Testing Simplified Proteins Models of the hPin1 WW DomainBiophysical Journal, 2006
- Φ-Analysis at the Experimental Limits: Mechanism of β-Hairpin FormationJournal of Molecular Biology, 2006
- Dynamics, Energetics, and Structure in Protein FoldingBiochemistry, 2006
- Sub-microsecond Protein FoldingJournal of Molecular Biology, 2006
- The Transition State for Folding of a Peripheral Subunit-binding Domain Contains Robust and Ionic-strength Dependent CharacteristicsJournal of Molecular Biology, 2006
- Robustness of Downhill Folding: Guidelines for the Analysis of Equilibrium Folding Experiments on Small ProteinsBiochemistry, 2005
- A Simple Thermodynamic Test To Discriminate between Two-State and Downhill FoldingJournal of the American Chemical Society, 2004
- Effects of Chain Stiffness on the Dynamics of Loop Formation in Polypeptides. Appendix: Testing a 1-Dimensional Diffusion Model for Peptide DynamicsThe Journal of Physical Chemistry B, 2002
- The folding mechanism of a β-sheet: the WW domainJournal of Molecular Biology, 2001
- The Electronic Adiabatic-Diabatic Transformation Matrix: A Theoretical and Numerical Study of a Three-State SystemThe Journal of Physical Chemistry A, 1999