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March 16, 2026Angewandte Chemie0 citations

Glycinamide‐Driven Coumarin Construction (GDCC): A Mild Strategy for Fluorescent Labeling and Macrocyclization of Peptides

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XGXiao-Fei GaoWXWei XiaoTTTian‐Ming Tao

Key Points

  • The research aims to develop a novel reaction for efficient cyclization of peptides lacking reactive side chains.
  • Employ glycinamide-driven coumarin construction (GDCC) for peptide cyclization.
  • Use salicylaldehyde analogs to form coumarin scaffolds.
  • Conduct reactions under mild, metal- and catalyst-free conditions.
  • Explore the effect of symmetrical salicylaldehyde-based linkers on cyclization efficiency.
  • Synthesize diverse fluorescent peptide macrocycles for biological applications.
  • Demonstrated efficient fluorescent labeling of peptides using various salicylaldehyde derivatives.
  • Achieved successful intramolecular bis-glycine cyclization, producing intrinsically fluorescent macrocycles.
  • Optimal peptide variant exhibited photophysical properties matching or exceeding standard coumarin compounds.
  • Validated broad substrate scope and compatibility with solid- and solution-phase peptide synthesis.
  • Produced diverse cyclic peptides for applications such as live-cell imaging and targeted drug delivery.

Abstract

ABSTRACT Peptidic macrocycles have attracted increasing attention due to their well‐defined structures and enhanced biological activities. However, efficient cyclization of residues lacking reactive side chains remains a significant challenge. Herein, we report a glycinamide‐driven coumarin construction (GDCC) reaction that enables the in situ formation of coumarin scaffolds via condensation between C ‐terminal glycine residues and salicylaldehyde analogs under mild, metal‐ and catalyst‐free conditions. While various salicylaldehyde derivatives afford efficient fluorescent labeling, symmetrical salicylaldehyde‐based linkers uniquely promote intramolecular bis ‐glycine cyclization, generating intrinsically fluorescent peptide macrocycles with tunable topology and hydrophobicity. Notably, the optimal peptide 64 exhibits photophysical properties comparable or even superior to those of the coumarin gold standard, 7‐(diethylamino)‐4‐methylcoumarin. The GDCC reaction displays broad substrate scope and excellent compatibility with both solid‐phase and solution‐phase peptide synthesis. Its potential in chemical biology is demonstrated by the streamlined construction of diverse fluorescent cyclic peptides, including RGD‐based probes for live‐cell imaging, peptide–drug conjugates for targeted doxorubicin delivery, and a panel of PD‐1/PD‐L1 interaction inhibitors with tunable activity.

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Cite This Study

Gao et al. (2026) studied this question.

synapsesocial.com/papers/69b79e968166e15b153ac0f6https://doi.org/10.1002/ange.202525302
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