A proximity-driven and regioselective peptide bicyclization (PReP-Bicyc) approach for phage display libraries

Peptide macrocyclization is a powerful strategy to enhance the stability, rigidity, binding affinity, and cellular permeability of therapeutic candidates. Peptide bicycles provide superior conformational constraint but remain difficult to generate in phage-displayed libraries because of limited phage-compatible chemistries. Here, we report Proximity-Driven, Regioselective Peptide Bicyclization (PReP-Bicyc), a general, additive-free, phage-compatible strategy for site-selective bicyclization of peptide libraries. PReP-Bicyc uses a rationally designed linker, 4,6-dichloropyrimidine-2-carbonitrile (4,6-DCCPm), that rapidly reacts with an N-terminal cysteine through nitrile-mediated thiazoline formation, followed by proximity-driven intramolecular thiol arylation of two internal cysteines. The resulting bicycles form efficiently under mild conditions while preserving phage viability. Screening a PReP-Bicyc-modified CX4CX4C library against programmed cell death protein 1 (PD-1) identifies sub-micromolar bicyclic ligands (best Kd ≈ 400 nM) that selectively label PD-1-expressing cells and inhibit the PD-1/PD-L1 interaction. PReP-Bicyc provides a robust platform for evolving high-affinity bicyclic ligands and expands the chemical toolkit for macrocyclic therapeutic discovery. Peptide bicycles offer superior conformational constraint but remain challenging to construct within phage-displayed peptide libraries due to the necessity for phage-compatible chemistry. Here, the authors report Proximity-Driven, Regioselective Peptide Bicyclization (PReP-Bicyc), a general, additive-free, and phage-compatible strategy for site-selective bicyclization of phage-displayed peptide libraries.

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Publication Details

Journal
Nature Communications
Published
2026-10-03
DOI
https://doi.org/10.1038/s41467-026-77740-5
Primary Topic
Chemical Synthesis and Analysis
Type
article
Field-Weighted Citation Impact
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article

A proximity-driven and regioselective peptide bicyclization (PReP-Bicyc) approach for phage display libraries

Joshua Trae Hampton, Guoqing Jin, Thuzar Hla Shwe, Shihui Fan et al.
Nature Communications
Chemical Synthesis and Analysis
article

A proximity-driven and regioselective peptide bicyclization (PReP-Bicyc) approach for phage display libraries

Joshua Trae Hampton, Guoqing Jin, Thuzar Hla Shwe, Shihui Fan, Wenyue Cao, Demonta D. Coleman, Zihan Anna Zhang, Wenshe Ray Liu, Hoang-Son Lai Le, Satyanarayana Nyalata, Yifan Shi
article en

Abstract

Peptide macrocyclization is a powerful strategy to enhance the stability, rigidity, binding affinity, and cellular permeability of therapeutic candidates. Peptide bicycles provide superior conformational constraint but remain difficult to generate in phage-displayed libraries because of limited phage-compatible chemistries. Here, we report Proximity-Driven, Regioselective Peptide Bicyclization (PReP-Bicyc), a general, additive-free, phage-compatible strategy for site-selective bicyclization of peptide libraries. PReP-Bicyc uses a rationally designed linker, 4,6-dichloropyrimidine-2-carbonitrile (4,6-DCCPm), that rapidly reacts with an N-terminal cysteine through nitrile-mediated thiazoline formation, followed by proximity-driven intramolecular thiol arylation of two internal cysteines. The resulting bicycles form efficiently under mild conditions while preserving phage viability. Screening a PReP-Bicyc-modified CX4CX4C library against programmed cell death protein 1 (PD-1) identifies sub-micromolar bicyclic ligands (best Kd ≈ 400 nM) that selectively label PD-1-expressing cells and inhibit the PD-1/PD-L1 interaction. PReP-Bicyc provides a robust platform for evolving high-affinity bicyclic ligands and expands the chemical toolkit for macrocyclic therapeutic discovery. Peptide bicycles offer superior conformational constraint but remain challenging to construct within phage-displayed peptide libraries due to the necessity for phage-compatible chemistry. Here, the authors report Proximity-Driven, Regioselective Peptide Bicyclization (PReP-Bicyc), a general, additive-free, and phage-compatible strategy for site-selective bicyclization of phage-displayed peptide libraries.

Nature Communications
Texas College (US), Texas A&M Health Science Center (US), Texas A&M University (US)
Openalex Percentile: Top 20%
Chemical Synthesis and Analysis
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