Crystallographic and electrophilic fragment screening of the SARS-CoV-2 main protease
- A. Douangamath
- D. Fearon
- Paul Gehrtz
- T. Krojer
- Petra Lukacik
- David Owen
- Efrat Resnick
- Claire Strain‐Damerell
- A. Aimon
- Péter Ábrányi‐Balogh
- J. Brandão-Neto
- Anna Carbery
- Gemma Davison
- Alexandre Dias
- Thomas D. Downes
- Louise Dunnett
- M. Fairhead
- James D. Firth
- Simon Jones
- Aaron Keeley
- György M. Keserű
- Hanna F. Klein
- Mathew P. Martin
- M.E.M. Noble
- Peter O’Brien
- A.J. Powell
- Rambabu Reddi
- R. Skyner
- M. Snee
- Michael J. Waring
- Conor Wild
- Nir London
- FDF. von Delft
- Martin Walsh
Nature Communications · 2020 · Nature Portfolio
2 views · 0 downloads
Abstract
COVID-19, caused by SARS-CoV-2, lacks effective therapeutics. Additionally, no antiviral drugs or vaccines were developed against the closely related coronavirus, SARS-CoV-1 or MERS-CoV, despite previous zoonotic outbreaks. To identify starting points for such therapeutics, we performed a large-scale screen of electrophile and non-covalent fragments through a combined mass spectrometry and X-ray approach against the SARS-CoV-2 main protease, one of two cysteine viral proteases essential for viral replication. Our crystallographic screen identified 71 hits that span the entire active site, as well as 3 hits at the dimer interface. These structures reveal routes to rapidly develop more potent inhibitors through merging of covalent and non-covalent fragment hits; one series of low-reactivity, tractable covalent fragments were progressed to discover improved binders. These combined hits offer unprecedented structural and reactivity information for on-going structure-based drug design against SARS-CoV-2 main protease.
