An N ‐acyl Donor for Serine/Threonine Ligation Involving a Direct N ‐to‐ N Acyl Shift

ABSTRACT Developing precise peptide modification protocols is crucial for peptide‐based drug development. While chemical ligation addresses this, conventional methods often face difficulties such as side reactions due to the high electrophilicity of S ‐ or O ‐acyl donors. Here we developed an N ‐(2‐formylphenyl)‐hydroxamate (HDX) ester as an N ‐acyl donor for chemical ligation involving a direct N ‐to‐ N acyl shift, eliminating the need for S ‐ or O ‐acyl compounds. Mechanistic studies revealed kinetic selectivity between substrates and the reversibility of the acyl shift, suggesting the possibility achieving chemoselectivity through kinetic and thermodynamic control. In addition, an HDX ester was applied to the structural modification of polymyxin derivatives, demonstrating that HDX esters can be useful for the modification of complex peptides. These findings provide a blueprint for designing N ‐acyl donors for chemical ligation, accelerating the advancement of peptide‐based therapeutics.

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Journal
Chemistry - A European Journal
Published
2026-10-05
DOI
https://doi.org/10.1002/chem.71755
Primary Topic
Chemical Synthesis and Analysis
Type
article
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article

An N ‐acyl Donor for Serine/Threonine Ligation Involving a Direct N ‐to‐ N Acyl Shift

Shin‐ichi Yokota, Satoshi Ichikawa, Akira Katsuyama, Rintaro Kaguchi et al.
Chemistry - A European Journal
Chemical Synthesis and Analysis
article

An N ‐acyl Donor for Serine/Threonine Ligation Involving a Direct N ‐to‐ N Acyl Shift

Shin‐ichi Yokota, Satoshi Ichikawa, Akira Katsuyama, Rintaro Kaguchi, Motohiro Horiuchi, Toyotaka Sato, Takafumi Iwasaki, Satoshi Takahashi
article en

Abstract

ABSTRACT Developing precise peptide modification protocols is crucial for peptide‐based drug development. While chemical ligation addresses this, conventional methods often face difficulties such as side reactions due to the high electrophilicity of S ‐ or O ‐acyl donors. Here we developed an N ‐(2‐formylphenyl)‐hydroxamate (HDX) ester as an N ‐acyl donor for chemical ligation involving a direct N ‐to‐ N acyl shift, eliminating the need for S ‐ or O ‐acyl compounds. Mechanistic studies revealed kinetic selectivity between substrates and the reversibility of the acyl shift, suggesting the possibility achieving chemoselectivity through kinetic and thermodynamic control. In addition, an HDX ester was applied to the structural modification of polymyxin derivatives, demonstrating that HDX esters can be useful for the modification of complex peptides. These findings provide a blueprint for designing N ‐acyl donors for chemical ligation, accelerating the advancement of peptide‐based therapeutics.

Chemistry - A European Journal
Hokkaido University of Science (JP), Sapporo Medical University (JP), Hokkaido University of Education (JP), Hokkaido University (JP), Hokkaido Pharmaceutical University (JP), Sapporo Medical University Hospital (JP), Hokkaido Institute of Public Health (JP)
Openalex Percentile: Top 21%
Chemical Synthesis and Analysis
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An N ‐acyl Donor for Serine/Threonine Ligation Involving a Direct N ‐to‐ N Acyl Shift — Shin‐ichi Yokota, Satoshi Ichikawa, et al. · Chemistry - A European Journal (2026) | TGRS Research Map | TGRS