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September 12, 2025Journal of the American Chemical Society8 citationsOpen Access

Cyclic Hydroxylamines for Native Residue-Forming Peptide Ligations: Synthesis of Ubiquitin and Tirzepatide

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JHJoo-Yeon HanKHKohtaro HiraoTMToshiki Mikami

Key Points

  • The developed cyclic dipeptide-derived hydroxylamine enables chemoselective coupling at native sites for peptide synthesis.
  • This methodology allows for the synthesis of challenging peptides, including ubiquitin and tirzepatide, enhancing therapeutic development.
  • New hydroxylamine building blocks effectively address limitations in traditional peptide ligation methods, improving versatility.
  • The approach leverages modified KAHA ligation conditions for canonical amino acid formation directly from unprotected peptide segments.

Abstract

The α-ketoacid-hydroxylamine (KAHA) ligation enables the chemoselective coupling of unprotected peptide segments. The most commonly used hydroxylamine building block, (S)-5-oxaproline, yields homoserine residues at ligation sites, limiting applications where the native sequence is essential. To overcome this limitation, we developed cyclic dipeptide-derived hydroxylamine building blocks that enable the formation of canonical amino acids directly under modified KAHA ligation conditions. These building blocks are prepared from dipeptides and are applicable at nonobvious peptide ligation junctions, including Leu-Ile and Lys-Ile. We applied this approach to the synthesis of K48/K63 selectively protected ubiquitin monomers for chemoenzymatic ubiquitin chain formation and the total synthesis of tirzepatide, a GLP-1 receptor agonist peptide therapeutic containing amino-isobutyric acid (Aib) residues and a fatty acid side chain modification. This work establishes a practical approach for KAHA ligation at fully native sites and expands its applicability to the practical synthesis of challenging peptide targets.

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Cite This Study

Han et al. (2025) studied this question.

synapsesocial.com/papers/68d44a3731b076d99fa534ffhttps://doi.org/10.1021/jacs.5c11881
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