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Stegmann, D. P.

Publications and source records attributed to Stegmann, D. P..

2 recordsLinked to original sources

Time-Resolved Crystallography Reveals the Mechanisms of GTP hydrolysis for N-RAS and the Oncogenic Mutants G12C, G12V and Q61L

The RAS family of small GTPases are molecular switches that convey downstream signals regulating cell proliferation, differentiation, and apoptosis. The signaling competent GTP-bound RAS transitions to its inactive GDP-bound form through {gamma}-phosphate hydrolysis. Oncogenic RAS mutations hamper GTP hydrolysis and are present in up to 30% of all human cancers. Structural studies of RAS proteins bound to non-hydrolysable GTP analogs have revealed snapshots of the enzyme in its possibly active form. Yet, the mechanism of GTP hydrolysis has not been structurally resolved. To visualize this reaction in real time, we performed time-resolved crystallographic experiments employing a photolabile caged-GTP substrate. Fifty-seven distinctive reaction intermediates were captured during hydrolysis of a live GTP for N-RAS, the oncogenic mutants G12C, G12V and Q61L; and Y32R, a fast hydrolytic mutant. The reaction mechanisms and rates for the native and each of the mutants differed significantly; however, they shared common elements: an initially catalytically-defective open state, which transitions into the closed Michaelis complex state with solvent-assisted O3B-P{gamma} bond lengthening and breaking, followed by the release of the Mg2+ stabilized PO3-/PO4-3 species and unfolding of the switch loops. Given the conserved nature of GTP- and ATP-ases active sites, this structural work lays the basis to understand the universal mechanism of {gamma}-phosphate hydrolysis. Furthermore, search for cryptic binding sites during GTP hydrolysis in G12C, G12V, and Q61L mutants reveals the presence of distinctive state-dependent binding pockets that could be targets for structure-based drug discovery of experimentally resolved intermediates states.

cancer biology↗

Fixed-target time-resolved crystallography at XFELs: the scourge of light contamination but reduced sample consumption

X-ray free electron laser (XFEL) light sources have allowed for the rapid growth of time-resolved structural experiments, which provide crucial information on the function of biological machines and their mechanisms. We set out to commission the SwissMX fixed-target sample delivery system at the SwissFEL Cristallina experimental station using the PSI developed MISP-chip for pump-probe time-resolved experiments. To characterise the system, we used the light-sensitive protein crystals of the Light-Oxygen-Voltage domain 1 (LOV1) from Chlamydomonas reinhardtii. Using different experimental settings, the adjacent-well light contamination was carefully assessed, indicating that it is crucial to control the light scattering from solid supports otherwise significant contamination can occur. However, our results show that, after the initial experiments and parameter refinement, the opaque MISP-chips are suitable for pump-probing a light-sensitive protein. This crystallographic experiment also probed the sub-millisecond structural dynamics of the LOV1 and indicated that at {Delta}t=10 s the covalent thioether bond is already established between the reactive Cys57 and FMN cofactor. This experiment validated the crystals to be suitable for in-depth follow up studies of the still poorly understood signal transduction mechanism. Importantly, the fixed-target delivery system also permitted a tenfold reduction in protein sample consumption compared to the most successful system used at XFEL, the high-viscosity extruder. This development creates the prospect of an exciting increase in XFEL project throughput for the field.

biophysics↗