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Multiparameter Kinetic Analysis for Covalent Fragment Optimization by Using Quantitative Irreversible Tethering (qIT)

Authors :
Teresa Kösel
Zoë H. Jukes
Tsz Lam M. Wong
Dominic P. Affron
Chun‐Ting Liu
Alan Armstrong
Gregory B. Craven
Rhodri M. L. Morgan
David J. Mann
Cancer and Polio Research Fund Ltd
Engineering & Physical Science Research Council (E
Source :
Chembiochem
Publication Year :
2020
Publisher :
Wiley, 2020.

Abstract

Chemical probes that covalently modify cysteine residues in a protein‐specific manner are valuable tools for biological investigations. Covalent fragments are increasingly implemented as probe starting points, but the complex relationship between fragment structure and binding kinetics makes covalent fragment optimization uniquely challenging. We describe a new technique in covalent probe discovery that enables data‐driven optimization of covalent fragment potency and selectivity. This platform extends beyond the existing repertoire of methods for identifying covalent fragment hits by facilitating rapid multiparameter kinetic analysis of covalent structure–activity relationships through the simultaneous determination of K i, k inact and intrinsic reactivity. By applying this approach to develop novel probes against electrophile‐sensitive kinases, we showcase the utility of the platform in hit identification and highlight how multiparameter kinetic analysis enabled a successful fragment‐merging strategy.<br />Breaking into fragments: A biophysical platform for determining the complex structure–activity relationships of covalent fragments. By using this approach, a novel series of covalent fragments has been identified for targeting electrophile‐sensitive kinases; optimization is facilitated by covalent fragment merging.

Details

ISSN :
14397633 and 14394227
Volume :
21
Database :
OpenAIRE
Journal :
ChemBioChem
Accession number :
edsair.doi.dedup.....8cc64dad8bd162bde83f607eccec6cbe
Full Text :
https://doi.org/10.1002/cbic.202000457