Ab Initio Quantum Mechanical/Molecular Mechanical Molecular Dynamics Simulation of Enzyme Catalysis: The Case of Histone Lysine Methyltransferase SET7/9
- 22 March 2007
- journal article
- research article
- Published by American Chemical Society (ACS) in The Journal of Physical Chemistry B
- Vol. 111 (14) , 3758-3764
- https://doi.org/10.1021/jp067147i
Abstract
To elucidate enzyme catalysis through computer simulation, a prerequisite is to reliably compute free energy barriers for both enzyme and solution reactions. By employing on-the-fly Born−Oppenheimer molecular dynamics simulations with the ab initio quantum mechanical/molecular mechanical approach and the umbrella sampling method, we have determined free energy profiles for the methyl-transfer reaction catalyzed by the histone lysine methyltransferase SET7/9 and its corresponding uncatalyzed reaction in aqueous solution, respectively. Our calculated activation free energy barrier for the enzyme catalyzed reaction is 22.5 kcal/mol, which agrees very well with the experimental value of 20.9 kcal/mol. The difference in potential of mean force between a corresponding prereaction state and the transition state for the solution reaction is computed to be 30.9 kcal/mol. Thus, our simulations indicate that the enzyme SET7/9 plays an essential catalytic role in significantly lowering the barrier for the methyl-transfer reaction step. For the reaction in solution, it is found that the hydrogen bond network near the reaction center undergoes a significant change, and there is a strong shift in electrostatic field from the prereaction state to the transition state, whereas for the enzyme reaction, such an effect is much smaller and the enzyme SET7/9 is found to provide a preorganized electrostatic environment to facilitate the methyl-transfer reaction. Meanwhile, we find that the transition state in the enzyme reaction is a little more dissociative than that in solution.Keywords
This publication has 82 references indexed in Scilit:
- QM/MM Minimum Free-Energy Path: Methodology and Application to Triosephosphate IsomeraseJournal of Chemical Theory and Computation, 2007
- Computational Approaches: Reaction Trajectories, Structures, and Atomic Motions. Enzyme Reactions and ProficiencyChemical Reviews, 2006
- Implicit versus explicit solvent in free energy calculations of enzyme catalysis: Methyl transfer catalyzed by catechol O-methyltransferaseThe Journal of Chemical Physics, 2006
- Unexpected Deacetylation Mechanism Suggested by a Density Functional Theory QM/MM Study of Histone-Deacetylase-Like ProteinJournal of the American Chemical Society, 2006
- SET8 Recognizes the Sequence RHRK20VLRDN within the N Terminus of Histone H4 and Mono-methylates Lysine 20Published by Elsevier ,2005
- Extension to the weighted histogram analysis method: combining umbrella sampling with free energy calculationsPublished by Elsevier ,2001
- The language of covalent histone modificationsNature, 2000
- The calculation of the potential of mean force using computer simulationsComputer Physics Communications, 1995
- Calculation of solvation free energies using a density functional/molecular dynamics coupled potentialThe Journal of Physical Chemistry, 1993
- Comparison of simple potential functions for simulating liquid waterThe Journal of Chemical Physics, 1983