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Sulfamate Acetamides as Self-Immolative Electrophiles for Covalent Ligand-Directed Release Chemistry.

Rambabu N ReddiAdi RogelRonen GabizonDattatraya Gautam RawaleBattu HarishShir MaromBarr TivonYamit Shorer ArbelNeta GurwiczRoni OrenKeren DavidJingjing LiuShirly DubersteinMaxim ItkinSergey MalitskyHaim BarrBen-Zion KatzYair HerishanuIdit ShacharZiv ShulmanNir London
Published in: Journal of the American Chemical Society (2023)
Electrophiles for covalent inhibitors that are suitable for in vivo administration are rare. While acrylamides are prevalent in FDA-approved covalent drugs, chloroacetamides are considered too reactive for such purposes. We report sulfamate-based electrophiles that maintain chloroacetamide-like geometry with tunable reactivity. In the context of the BTK inhibitor ibrutinib, sulfamate analogues showed low reactivity with comparable potency in protein labeling, in vitro, and cellular kinase activity assays and were effective in a mouse model of CLL. In a second example, we converted a chloroacetamide Pin1 inhibitor to a potent and selective sulfamate acetamide with improved buffer stability. Finally, we show that sulfamate acetamides can be used for covalent ligand-directed release (CoLDR) chemistry, both for the generation of "turn-on" probes as well as for traceless ligand-directed site-specific labeling of proteins. Taken together, this chemistry represents a promising addition to the list of electrophiles suitable for in vivo covalent targeting.
Keyphrases
  • mouse model
  • drug discovery
  • tyrosine kinase
  • small molecule
  • molecular docking
  • fluorescence imaging
  • single molecule
  • fluorescent probe
  • single cell
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