Mix-and-inject XFEL crystallography reveals gated conformational dynamics during enzyme catalysis

Author:

Dasgupta Medhanjali,Budday Dominik,de Oliveira Saulo H. P.,Madzelan Peter,Marchany-Rivera Darya,Seravalli Javier,Hayes Brandon,Sierra Raymond G.,Boutet Sébastien,Hunter Mark S.,Alonso-Mori Roberto,Batyuk AlexanderORCID,Wierman Jennifer,Lyubimov Artem,Brewster Aaron S.,Sauter Nicholas K.,Applegate Gregory A.,Tiwari Virendra K.,Berkowitz David B.,Thompson Michael C.,Cohen Aina E.,Fraser James S.,Wall Michael E.ORCID,van den Bedem HenryORCID,Wilson Mark A.ORCID

Abstract

How changes in enzyme structure and dynamics facilitate passage along the reaction coordinate is a fundamental unanswered question. Here, we use time-resolved mix-and-inject serial crystallography (MISC) at an X-ray free electron laser (XFEL), ambient-temperature X-ray crystallography, computer simulations, and enzyme kinetics to characterize how covalent catalysis modulates isocyanide hydratase (ICH) conformational dynamics throughout its catalytic cycle. We visualize this previously hypothetical reaction mechanism, directly observing formation of a thioimidate covalent intermediate in ICH microcrystals during catalysis. ICH exhibits a concerted helical displacement upon active-site cysteine modification that is gated by changes in hydrogen bond strength between the cysteine thiolate and the backbone amide of the highly strained Ile152 residue. These catalysis-activated motions permit water entry into the ICH active site for intermediate hydrolysis. Mutations at a Gly residue (Gly150) that modulate helical mobility reduce ICH catalytic turnover and alter its pre-steady-state kinetic behavior, establishing that helical mobility is important for ICH catalytic efficiency. These results demonstrate that MISC can capture otherwise elusive aspects of enzyme mechanism and dynamics in microcrystalline samples, resolving long-standing questions about the connection between nonequilibrium protein motions and enzyme catalysis.

Funder

HHS | NIH | National Institute of General Medical Sciences

NSF

HHS | NIH | National Heart, Lung, and Blood Institute

US Department of Energy Office of Science and the National Nuclear Security Administration

Publisher

Proceedings of the National Academy of Sciences

Subject

Multidisciplinary

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