Quantum and classical dynamics in biochemical reactions
- 1 January 1989
- journal article
- research article
- Published by Springer Nature in Photosynthesis Research
- Vol. 22 (1) , 15-27
- https://doi.org/10.1007/bf00114763
Abstract
The classic experiment of deVault and Chance touched off a long series of theoretical and experimental studies of the interplay between quantum and classical dynamics in photosynthetic electron transfer. More recently these issues have also been addressed in experiments on ligand binding reactions in heme proteins and through the study of kinetic isotope effects in enzymatic proton transfer. Theoretical effort has focused on a class of relatively simple models which display a surprisingly rich spectrum of dynamical behavior. Much less attention has been paid to a very important issue: Why are we allowed to use such simple models to describe such obviously complex molecules? Here we provide some tentative answers to this question, contrasting the cases of electron and proton transfer. We suggest that ideas based on simple models can inspire novel strategies for ‘realistic’ simulations, and that we can begin to think about the general problems of enzymatic catalysis in terms of dynamical pictures that previously have been applied only to the simpler case of electron transfer.Keywords
This publication has 30 references indexed in Scilit:
- Quantum tunnelling in a dissipative systemPublished by Elsevier ,2004
- Protein dynamics and reaction rates: mode-specific chemistry in large molecules?Proceedings of the National Academy of Sciences, 1988
- Simple Models for the Dynamics of Biomolecules: How Far Can We Go?Published by Springer Nature ,1987
- Molecular dynamics simulations of the holo and apo forms of retinol binding protein: Structural and dynamical changes induced by retinol removalJournal of Molecular Biology, 1986
- Protein Dynamics, Tunneling, and All ThatPhysica Scripta, 1986
- Femtosecond spectroscopy of excitation energy transfer and initial charge separation in the reaction center of the photosynthetic bacterium Rhodopseudomonas viridisProceedings of the National Academy of Sciences, 1986
- Some aspects of electron-transfer reaction dynamics.The Journal of Physical Chemistry, 1986
- Do vibrational spectroscopies uniquely describe protein dynamics? The case for myoglobinBiophysical Journal, 1985
- Failure of the Born–Oppenheimer and Franck–Condon approximations for long distance electron transfer rate calculationsThe Journal of Chemical Physics, 1984
- New Approach to the Theory of Superexchange InteractionsPhysical Review B, 1959