ArticleJournal of the American Chemical Society2026
A Genetically Encoded Electrophilic Lysine Derivative Enables Sortase-Mediated Assembly of SUMO Activity-Based Probes.
Article in Journal of the American Chemical Society, 2026. The graph could read no effect estimate from its abstract, so it casts no vote on the map. Not yet cited in PubMed.
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Abstract
Activity-based probes (ABPs) have become powerful tools for profiling enzymes that write and erase ubiquitin (Ub) and ubiquitin-like modifier (Ubl) signals. Extending this strategy to small ubiquitin-like modifier (SUMO)-specific proteases in defined substrate contexts remains challenging, because site-specific SUMO attachment must be combined with precise electrophile placement near the scissile isopeptide linkage. Here, we introduce a sortase-enabled chemoenzymatic platform for generating SUMO ABPs ranging from monoSUMO probes to native-like SUMO-substrate conjugates. The engineered sortase Srt2A ligates SUMO variants to glycine-bearing electrophiles, providing facile access to monoSUMO probes that trap deSUMOylases in vitro, in cellular lysates, and in living cells. To generate SUMO-substrate probes, we develop AzGVAisoK, a genetically encodable bifunctional lysine derivative containing both an azide-protected sortase handle and a vinyl amide electrophile. An engineered pyrrolysyl-tRNA synthetase/tRNA pair enables its site-specific incorporation into target proteins. Subsequent on-protein Staudinger reduction and sortase-mediated SUMOylation furnish defined SUMO-substrate ABPs under mild aqueous conditions. Applying this platform to PCNA and K11-linked diSUMO conjugates revealed distinct deSUMOylase trapping profiles governed by SUMO paralog and acceptor-substrate contexts. This work establishes a modular route to native-like SUMO probes and provides a general strategy for interrogating context-dependent enzyme recognition in Ubl signaling.
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