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ACS Catalysis|November 22, 2019
Examining the Origin of Catalytic Power of Catechol O-MethyltransferaseXi Chen, Steven D SchwartzThe Journal of Chemical Physics|July 16, 2008
Tunneling dynamics with a mixed quantum-classical method: quantum corrected propagator combined with frozen Gaussian wave packetsDavid Gelman, Steven D SchwartzThe Journal of Chemical Physics|April 10, 2009
Modeling vibrational resonance in linear hydrocarbon chain with a mixed quantum-classical methodDavid Gelman, Steven D SchwartzACS Omega|September 21, 2020
Multiple Reaction Pathways in the Morphinone Reductase-Catalyzed Hydride Transfer ReactionXi Chen, Steven D SchwartzThe Journal of Physical Chemistry. B|April 2, 2015
Free energy surface of the Michaelis complex of lactate dehydrogenase: a network analysis of microsecond simulationsXiaoliang Pan, Steven D SchwartzThe Journal of Physical Chemistry. B|July 13, 2022
Transition Path Sampling Based Calculations of Free Energies for Enzymatic Reactions: The Case of Human Methionine Adenosyl Transferase and <i>Plasmodium vivax</i> Adenosine DeaminaseSree Ganesh Balasubramani, Steven D SchwartzThe Journal of Physical Chemistry. A|December 5, 2008
Comparison studies of the human heart and Bacillus stearothermophilus lactate dehydrogreanse by transition path samplingSara L Quaytman, Steven D SchwartzJournal of Proteome Research|August 30, 2003
Protein promoting vibrations in enzyme catalysis--a conserved evolutionary motifJoshua S Mincer, Steven D SchwartzThe Journal of Physical Chemistry. A|February 28, 2013
Changes in protein architecture and subpicosecond protein dynamics impact the reaction catalyzed by lactate dehydrogenaseJean E Masterson, Steven D SchwartzJournal of Chemical Theory and Computation|March 8, 2016
Enzymatic Kinetic Isotope Effects from First-Principles Path Sampling CalculationsMatthew J Varga, Steven D SchwartzPageof 19