Literature DB >> 15548014

Solute solvent dynamics and energetics in enzyme catalysis: the S(N)2 reaction of dehalogenase as a general benchmark.

Mats H M Olsson1, Arieh Warshel.   

Abstract

One of the most useful ways of describing and analyzing enzyme catalysis is the description of the enzyme as an effective solvent for the reacting substrate. Here, we illustrate this concept by considering the S(N)2 reaction of haloalkan dehalogenase (DhlA), analyze the energetics and dynamics of the solvent coordinate, and evaluate their relative catalytic effect. It is demonstrated that almost the entire catalytic effect is associated with the preorganization of the protein-solvent coordinate. It is clarified that this effect is associated with the fact that the transition state is "solvated" by the protein more than in the reference solution reaction. This effect is fundamentally different than the frequently proposed desolvation mechanism. The possible catalytic role of dynamical effects is analyzed by considering several reasonable ways of defining "dynamical contributions to catalysis". It is found that these contributions are small regardless of the definition used. It is also shown that the effect of the difference in the relaxation time of the solvent coordinate in the enzyme and solution reaction is rather trivial relative to the effect of the corresponding changes in reorganization free energy.

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Year:  2004        PMID: 15548014     DOI: 10.1021/ja047151c

Source DB:  PubMed          Journal:  J Am Chem Soc        ISSN: 0002-7863            Impact factor:   15.419


  28 in total

1.  Exploring challenges in rational enzyme design by simulating the catalysis in artificial kemp eliminase.

Authors:  Maria P Frushicheva; Jie Cao; Zhen T Chu; Arieh Warshel
Journal:  Proc Natl Acad Sci U S A       Date:  2010-09-09       Impact factor: 11.205

2.  Enhancing Paradynamics for QM/MM Sampling of Enzymatic Reactions.

Authors:  Jerônimo Lameira; Ilya Kupchencko; Arieh Warshel
Journal:  J Phys Chem B       Date:  2016-02-29       Impact factor: 2.991

3.  Transition state theory can be used in studies of enzyme catalysis: lessons from simulations of tunnelling and dynamical effects in lipoxygenase and other systems.

Authors:  Mats H M Olsson; Janez Mavri; Arieh Warshel
Journal:  Philos Trans R Soc Lond B Biol Sci       Date:  2006-08-29       Impact factor: 6.237

Review 4.  Mechanisms and free energies of enzymatic reactions.

Authors:  Jiali Gao; Shuhua Ma; Dan T Major; Kwangho Nam; Jingzhi Pu; Donald G Truhlar
Journal:  Chem Rev       Date:  2006-08       Impact factor: 60.622

Review 5.  Multidimensional tunneling, recrossing, and the transmission coefficient for enzymatic reactions.

Authors:  Jingzhi Pu; Jiali Gao; Donald G Truhlar
Journal:  Chem Rev       Date:  2006-08       Impact factor: 60.622

6.  Exploring the Development of Ground-State Destabilization and Transition-State Stabilization in Two Directed Evolution Paths of Kemp Eliminases.

Authors:  Garima Jindal; Balajee Ramachandran; Ram Prasad Bora; Arieh Warshel
Journal:  ACS Catal       Date:  2017-03-30       Impact factor: 13.084

7.  On the Origins of the Linear Free Energy Relationships: Exploring the Nature of the Off-Diagonal Coupling Elements in S(N)2 Reactions.

Authors:  Edina Rosta; Arieh Warshel
Journal:  J Chem Theory Comput       Date:  2012-03-29       Impact factor: 6.006

Review 8.  Multiple intermediates, diverse conformations, and cooperative conformational changes underlie the catalytic hydride transfer reaction of dihydrofolate reductase.

Authors:  Karunesh Arora; Charles L Brooks
Journal:  Top Curr Chem       Date:  2013

9.  On unjustifiably misrepresenting the EVB approach while simultaneously adopting it.

Authors:  Shina C L Kamerlin; Jie Cao; Edina Rosta; Arieh Warshel
Journal:  J Phys Chem B       Date:  2009-08-06       Impact factor: 2.991

10.  Misunderstanding the preorganization concept can lead to confusions about the origin of enzyme catalysis.

Authors:  Garima Jindal; Arieh Warshel
Journal:  Proteins       Date:  2017-09-30
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