Abstract
A procedure for the dynamical simulation of activated processes, such as ligand binding and enzymatic reactions, in a globular protein is outlined. Preliminary calculations of the transition state geometry and barrier crossing trajectories are presented for a model reaction, the rotation of an aromatic ring in the bovine pancreatic trypsin inhibitor. The results show that repulsive nonbonded interactions between the ring atoms and the atoms in the surrounding protein matrix determine the dynamical character of the reorientation process; the nonbonded interactions are the source of the rotational barrier and of the impulses that speed up or slow down the ring motion during the barrier crossings.
Dates
Type | When |
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Created | 19 years, 2 months ago (May 31, 2006, 4:02 a.m.) |
Deposited | 3 years, 4 months ago (April 13, 2022, 11:26 a.m.) |
Indexed | 4 months, 2 weeks ago (April 9, 2025, 1:40 a.m.) |
Issued | 46 years ago (Aug. 1, 1979) |
Published | 46 years ago (Aug. 1, 1979) |
Published Online | 46 years ago (Aug. 1, 1979) |
Published Print | 46 years ago (Aug. 1, 1979) |
@article{McCammon_1979, title={Dynamics of activated processes in globular proteins.}, volume={76}, ISSN={1091-6490}, url={http://dx.doi.org/10.1073/pnas.76.8.3585}, DOI={10.1073/pnas.76.8.3585}, number={8}, journal={Proceedings of the National Academy of Sciences}, publisher={Proceedings of the National Academy of Sciences}, author={McCammon, J A and Karplus, M}, year={1979}, month=aug, pages={3585–3589} }