α-Halothioamide warheads with enhanced cysteine reactivity and specificity for covalent protein labelling
- Nat Commun. 2026 May 14. doi: 10.1038/s41467-026-72993-6.
- 1. Medicinal Chemistry Research Group, Research Centre for Natural Sciences, Budapest, Hungary.
- 2. National Laboratory of Pharmaceutical Research and Development, Research Centre for Natural Sciences, Budapest, Hungary.
- 3. Institute of Chemistry, Eötvös Loránd University, Budapest, Hungary.
- 4. Department of Chemical and Structural Biology, The Weizmann Institute of Science, Rehovot, Israel.
- 5. Department of Organic Chemistry and Technology, Budapest University of Technology and Economics, Budapest, Hungary.
- 6. MS Metabolomics Research Laboratory, Research Centre for Natural Sciences, Budapest, Hungary.
- 7. Department of Chemical and Structural Biology, The Weizmann Institute of Science, Rehovot, Israel. [email protected].
- 8. Medicinal Chemistry Research Group, Research Centre for Natural Sciences, Budapest, Hungary. [email protected].
- 9. National Laboratory of Pharmaceutical Research and Development, Research Centre for Natural Sciences, Budapest, Hungary. [email protected].
- 10. Department of Organic Chemistry and Technology, Budapest University of Technology and Economics, Budapest, Hungary. [email protected].
- # Contributed equally.
Covalent labelling is a promising modality relying on electrophilic warheads that form covalent bonds with their targets. Here we present the oxygen-to-sulfur exchange strategy, that transforms traditional carboxamides to thioamides, yielding electrophilic warheads, including chlorothioacetamides and fluorothioacetamides, with enhanced cysteine reactivity, while retaining aqueous stability and selectivity. We demonstrate their utility in targeted covalent inhibitor development targeting Janus kinase 3 and Bruton's tyrosin kinase, when installed on relevant scaffolds and also in the development of antibody-drug conjugates. Next, alkyne-tagged α-halothioamide probes are evaluated by quantitative chemoproteomics. These studies reveal that the chlorothioacetamide probe preferentially labelled a distinct subset of the proteome, which results in Cys-targeted covalent phosphodiesterase 6δ labelling with functional impact. We discuss that the oxygen-to-sulfur exchange strategy offers alternative cysteine-specific thioamide-derived warheads and enables precise and even late-stage modulation of covalent reactivity, highlighting their promise for covalent probe design and applications in medicinal chemistry and chemical biology.
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Cat. No.Product NameDescriptionTargetResearch Area
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Research Areas: Cancer