| Literature DB >> 32159076 |
John B Stiller1, S Jordan Kerns1,2, Marc Hoemberger1,2, Young-Jin Cho1,2, Renee Otten1, Michael F Hagan3, Dorothee Kern1.
Abstract
Protein conformational changes are frequently essential for enzyme catalysis, and in several cases, shown to be the limiting factor for overall catalytic speed. However, a structural understanding of corresponding transition states, needed to rationalize the kinetics, remains obscure due to their fleeting nature. Here, we determine the transition-state ensemble of the rate-limiting conformational transition in the enzyme adenylate kinase, by a synergistic approach between experimental high-pressure NMR relaxation during catalysis and molecular dynamics simulations. By comparing homologous kinases evolved under ambient or high pressure in the deep-sea, we detail transition state ensembles that differ in solvation as directly measured by the pressure dependence of catalysis. Capturing transition-state ensembles begins to complete the catalytic energy landscape that is generally characterized by structures of all intermediates and frequencies of transitions among them.Entities:
Year: 2019 PMID: 32159076 PMCID: PMC7063682 DOI: 10.1038/s41929-019-0307-6
Source DB: PubMed Journal: Nat Catal