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Updated: Sep 12, 2025

Constructing Cyclic Peptides Using an On-Tether Sulfonium Center
Published on: September 28, 2022
Direct Editing of Cysteine to Electrophilic Alkyl Halides in Peptides
Daniel S Honeycutt1, Waldo Salgado-Bello1, Harlan S Greenberg2
1Department of Chemistry, University of Rhode Island, 140 Flagg Rd, Kingston, Rhode Island 02881, United States.
Abstract:
Functional group conversion is a cornerstone of modern synthetic chemistry. Many strategies routinely employed for small-molecule transformations are unsuitable for modifying biomacromolecules, including peptides. Here, we describe a simple but chemoselective approach that directly converts the nucleophilic cysteine carbon-thiol side chain into an electrophilic carbon-halogen bond under mild conditions, compatible with diverse peptides. The incorporation of this versatile synthetic handle facilitates a range of subsequent transformations that are rarely, if ever, applied to complicated peptides. We envision that this side-chain editing methodology will open a broad expanse of unexplored peptide chemical space, which will concomitantly unlock applications for an entire class of new biomacromolecules.
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