Configuration-dependent diffusion can shift the kinetic transition state and barrier height of protein folding
- 11 September 2007
- journal article
- Published by Proceedings of the National Academy of Sciences in Proceedings of the National Academy of Sciences
- Vol. 104 (37), 14646-14651
- https://doi.org/10.1073/pnas.0606506104
Abstract
We show that diffusion can play an important role in protein-folding kinetics. We explicitly calculate the diffusion coefficient of protein folding in a lattice model. We found that diffusion typically is configuration- or reaction coordinate-dependent. The diffusion coefficient is found to be decreasing with respect to the progression of folding toward the native state, which is caused by the collapse to a compact state constraining the configurational space for exploration. The configuration- or position-dependent diffusion coefficient has a significant contribution to the kinetics in addition to the thermodynamic free-energy barrier. It effectively changes (increases in this case) the kinetic barrier height as well as the position of the corresponding transition state and therefore modifies the folding kinetic rates as well as the kinetic routes. The resulting folding time, by considering both kinetic diffusion and the thermodynamic folding free-energy profile, thus is slower than the estimation from the thermodynamic free-energy barrier with constant diffusion but is consistent with the results from kinetic simulations. The configuration- or coordinate-dependent diffusion is especially important with respect to fast folding, when there is a small or no free-energy barrier and kinetics is controlled by diffusion. Including the configurational dependence will challenge the transition state theory of protein folding. The classical transition state theory will have to be modified to be consistent. The more detailed folding mechanistic studies involving phi value analysis based on the classical transition state theory also will have to be modified quantitatively.Keywords
This publication has 55 references indexed in Scilit:
- Ultrafast dynamics of protein collapse from single-molecule photon statisticsProceedings of the National Academy of Sciences, 2007
- Effective stochastic dynamics on a protein folding energy landscapeThe Journal of Chemical Physics, 2006
- Sub-microsecond Protein FoldingJournal of Molecular Biology, 2006
- Specific and Nonspecific Collapse in Protein Folding FunnelsPhysical Review Letters, 2002
- Towards a consistent modeling of protein thermodynamic and kinetic cooperativity: how applicable is the transition state picture to folding and unfolding?Journal of Molecular Biology, 2002
- Energetic Components of Cooperative Protein FoldingPhysical Review Letters, 2000
- 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
- Scaling of Folding Properties in Simple Models of ProteinsPhysical Review Letters, 1999
- Linking rates of folding in lattice models of proteins with underlying thermodynamic characteristicsThe Journal of Chemical Physics, 1998
- Statistics of Kinetic Pathways on Biased Rough Energy Landscapes with Applications to Protein FoldingPhysical Review Letters, 1996