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bioRxiv · 10.1101/2022.09.26.509485

Allosteric regulation and crystallographic fragment screening of SARS-CoV-2 NSP15 endoribonuclease

Abstract

SARS-CoV-2 is the causative agent of COVID-19. The highly conserved viral NSP15 endoribonuclease, NendoU, is a key enzyme involved in viral immune evasion, and a promising target for the development of new classes of antivirals. Yet, the broad variety of recognition sequences, complex assembly and kinetics, and lack of structural complexes hampers the development of new competitive or allosteric inhibitors for this target. Here, we performed enzymatic characterization of NendoU in its monomeric and hexameric form, showing that hexamers are allosteric enzymes with a positive cooperative index of 2. By using cryo-EM at distinct pHs combined with X-ray crystallography and structural analysis, we demonstrate the potential for NendoU to shift between open and closed states, and assembly in larger supramolecular entities, which might serve as a mechanism of self-regulation. Further, we report results from a large fragment screening campaign against NendoU, revealing multiple new allosteric sites for the development of inhibitors.

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BibTeXRIS

Schutzer Godoy, A., Minalli Nakamura, A., Douangamath, A., Song, Y., Dias Noske, G., Oliveira Gawriljuk, V., Sachetto Fernandes, R., D. Muniz Pereira, H., Irene Zagato Oliveira, K., Fearon, D., Dias, A., Krojer, T., Fairhead, M., Powell, A., Dunnet, L., Brandao-Neto, J., Skyner, R., Chalk, R., von Delft, F., Bajusz, D., Bege, M., Borbas, A., Miklos Keseru, G., Oliva, G.. 2022-09-26. Allosteric regulation and crystallographic fragment screening of SARS-CoV-2 NSP15 endoribonuclease. https://doi.org/10.1101/2022.09.26.509485

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