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Updated: Sep 13, 2025

Construction of Cyclic Cell-Penetrating Peptides for Enhanced Penetration of Biological Barriers
Published on: September 19, 2022
Trifluoroacetic Acid Promotes Ultrafast Peptide Cyclization Mediated with Dimethylolurea
Shi Wang1, Huanhuan Yang1, Jinglin Song1
1College of Sciences, Nanjing Agricultural University, Nanjing 210095, China.
Abstract:
Cyclic peptides have gained widespread attention as potential medium-sized modulators of biomolecular interactions with large binding surfaces. Effective and user-friendly cyclization methods are increasingly becoming important for researchers across disciplines seeking to access diverse cyclic peptide structures. Here, a highly selective, rapid, and operationally simple method is reported for directly cyclizing unprotected peptides in which dimethylolurea effectively reacts with a pair of cysteine residues within an unprotected peptide sequence, forming a novel cyclic peptide. The reaction occurs in a trifluoroacetic acid-acetonitrile-water system, offering rapid conversion and easy operation. Furthermore, we demonstrate the applicability of dimethylolurea-mediated cyclization to generate cyclic peptides with improved uptake into living cells and enhanced affinity for their target proteins. Overall, this method provides a valuable addition to the peptide engineering toolbox, facilitating the development of functional cyclic peptides for chemical biology and drug discovery.
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