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Biology subjects

Gu, D.-H.

Publications and source records attributed to Gu, D.-H..

3 recordsLinked to original sources

Use of photocaged molecular oxygen for time-resolved serial X-ray crystallography

Photocages offer an attractive means of synchronously triggering enzyme-substrate driven reactions in biological systems in crystallo expanding the reach of light-driven catalysis. We describe the application of photocaged molecular oxygen to trigger molecular oxygen binding in crystals of myoglobin under anaerobic conditions and follow structural changes using both serial synchrotron and serial femtosecond X-ray crystallography. This is enabled through use of fixed targets under anaerobic conditions, utilising thin polymeric films with low molecular oxygen permeability and validated by serially collecting deoxy myoglobin structures and complementary in crystallo UV-Vis spectroscopy. Release of molecular oxygen from the photocage and subsequent binding of the gaseous ligand is structurally visualised in oxygen-bound structures of myoglobin at 5 and 10 ms and various laser parameters. We present a robust workflow for enabling anaerobic room-temperature data collection of oxygen-sensitive samples on fixed targets and report the successful photo-release of caged molecular oxygen for time-resolved serial crystallography.

molecular biology↗

Time-resolved ligand dynamics revealed in a β-lactamase using room-temperature serial crystallography

{beta}-Lactamases catalyze {beta}-lactam antibiotic hydrolysis and are important contributors to bacterial antimicrobial resistance; {beta}-lactamase inhibitors are widely used to overcome {beta}-lactamase-mediated antibiotic resistance. Nucleophilic serine {beta}-lactamases (SBLs) react with their substrates and clinically available inhibitors via a covalent reaction to give complexes which can undergo further reaction. Using room temperature drop on fixed target serial crystallography, where ligands are rapidly mixed with microcrystals, and classical single-crystal crystallography at cryogenic temperatures, we investigate the reversible covalent reaction of the SBL CTX-M-15 with the diazobicyclooctane inhibitor avibactam. We observe avibactam covalently reacted (ring-opened) with the nucleophilic Ser70, at timepoints from 80 ms to minutes (room temperature) and hours (100 K). These crystallographic data reveal time-dependent movement of the avibactam carbamoyl complex, from 1.3 s onwards, that has implications for the 5-exo-trig recyclization mechanism that determines inhibitor reformation. Combined with molecular dynamics simulations and quantum mechanics calculations at the density functional theory level, the results show that in the first seconds of the reaction the avibactam N-sulfate nitrogen is poorly positioned for recyclization. This subsequently equilibrates after 10 s to a stable endpoint that is in a conformation potentially primed to initiate recyclization through attack of the N-sulfate nitrogen on the carbamoyl carbon. These results further demonstrate the capacity of room-temperature serial crystallography to capture time-resolved changes in ligand conformation at an enzyme active site, complementing discrete classical cryo-crystallography. These data inform on ligand dynamics and the stereoelectronics of diazobicyclooctane inhibition, aiding drug discovery efforts to develop inhibitors of nucleophilic enzymes.

biochemistry↗

Drop on fixed target reaction initiation approach for serial and time resolved crystallography

We describe the design and implementation of a drop on fixed target method for time-resolved serial crystallography at both synchrotron and XFEL facilities. A piezoelectric droplet dispensing pipette is employed for addition of picolitre volume (40 - 90 pL) aqueous droplets, containing (co-)substrate(s) or ligand(s), onto enzyme microcrystals immobilised on a solid support. The system was tested with various enzyme systems, including lysozyme and two -lactamases, CTX-M-15 and AmpCEC. Mitigation strategies for cross-well contamination, including the implementation of interleaved controls, are described; the overall performance of the system at synchrotron and X-ray free electron laser facilities was evaluated. This drop on fixed target method is a reliable framework for time-resolved crystallography and will improve the consistency of measurements across facilities.

biophysics↗