From discrete protein kinetics to continuous Brownian dynamics: A new perspective
- 1 January 2002
- journal article
- review article
- Published by Wiley in Protein Science
- Vol. 11 (1) , 1-5
- https://doi.org/10.1110/ps.18902
Abstract
This article presents a comparative analysis of two sets of data from recent experiments on kinetics of (i) protein unfolding by mechanical force and (ii) channel gating with membrane electric potential. Both situations necessitate a continuous Brownian-dynamic view of protein conformational kinetics. We show that the discrete approach traditional to biochemical kinetics is insufficient for understanding dynamics of protein molecules in an aqueous solution or lipid membrane with varying conditions under which the major activation barrier can disappear. A semiquantitative analysis based on Brownian dynamics in a continuous energy landscape offers a more comprehensive description for motions of biological macromolecules.Keywords
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This publication has 37 references indexed in Scilit:
- Stretching single molecules into novel conformations using the atomic force microscope.Nature Structural & Molecular Biology, 2000
- Local interactions and the optimization of protein foldingProteins-Structure Function and Bioinformatics, 1997
- Dynamic strength of molecular adhesion bondsBiophysical Journal, 1997
- Computing the Field in Proteins and ChannelsThe Journal of Membrane Biology, 1996
- The nature of protein folding pathways: The classical versus the new viewJournal of Biomolecular NMR, 1995
- Gating of Shaker K+ channels: II. The components of gating currents and a model of channel activationBiophysical Journal, 1994
- Pulsed H/D-exchange studies of folding intermediatesCurrent Opinion in Structural Biology, 1993
- DENATURED STATES OF PROTEINSAnnual Review of Biochemistry, 1991
- Diffusion theory and discrete rate constants in ion permeationThe Journal of Membrane Biology, 1988
- Kinetics of the Opening and Closing of Individual Excitability-Inducing Material Channels in a Lipid BilayerThe Journal of general physiology, 1974