Genetically Encoded Lysine‐Selective Photocyclization Enables Phage Display Selection of Cyclic Peptide Binders

X Xiao‐Qin Yang (State Key Laboratory of Natural Product Chemistry, Lanzhou Magnetic Resonance Center, College of Chemistry and Chemical Engineering Lanzhou University Lanzhou P. R. China) W Wei Ming Z Ze‐Hao Zhang (State Key Laboratory of Natural Product Chemistry, Lanzhou Magnetic Resonance Center, College of Chemistry and Chemical Engineering Lanzhou University Lanzhou P. R. China) X Xiang Liu L Li‐Wen Bai (School of Pharmaceutical Sciences South−Central Minzu University Wuhan P. R. China) Z Zheng‐Hui Li (School of Pharmaceutical Sciences South−Central Minzu University Wuhan P. R. China) R Rong Huang X Xiao‐Hua Chen (State Key Laboratory of Drug Research Chinese Academy of Sciences Shanghai Institute of Materia Medica Shanghai P. R. China) X Xinxiang Lei (State Key Laboratory of Natural Product Chemistry, Lanzhou Magnetic Resonance Center, College of Chemistry and Chemical Engineering)

Abstract

ABSTRACT Genetically encoded macrocyclization strategies have expanded the cyclic peptide chemical space accessible to phage display but remain constrained by reliance on cysteine‐based reactivity or hydrolytically unstable lysine‐targeted reagents. Here, we introduce a lysine‐selective and proximity‐induced photocyclization platform enabled by the noncanonical amino acid o ‐nitrobenzyl alcohol lysine ( o ‐NBAK), incorporated into phage‐displayed peptides and activated using the mild and fully biocompatible PANAC photoclick reaction. Photocyclization proceeded efficiently on both purified pIII fusion proteins and intact phage particles with no detectable loss of infectivity, driven by intramolecular proximity between o ‐NBAK and a neighboring lysine, yielding well‐defined stable indazolone macrocycles. Screening PANAC‐cyclized libraries against disease‐relevant proteins produced cyclic ligands with nanomolar to low‐micromolar affinities, and cyclization enhanced proteolytic stability by more than an order of magnitude. These findings establish the first lysine‐selective cyclic peptide library constructed on phage through ncAA incorporation and demonstrate a robust, chemoselective, and broadly applicable strategy for discovering bioactive cyclic peptides.

Article Details

Volume / Issue Vol. 1, Issue 1
Published July 09, 2026
ISSN 1433-7851
Publisher Wiley

Journal Info

Angewandte Chemie International Edition

Wiley

ISSN: 1433-7851 Physical Sciences

Authors (9)

X

Xiao‐Qin Yang

State Key Laboratory of Natural Product Chemistry, Lanzhou Magnetic Resonance Center, College of Chemistry and Chemical Engineering Lanzhou University Lanzhou P. R. China

W

Wei Ming

Z

Ze‐Hao Zhang

State Key Laboratory of Natural Product Chemistry, Lanzhou Magnetic Resonance Center, College of Chemistry and Chemical Engineering Lanzhou University Lanzhou P. R. China

X

Xiang Liu

L

Li‐Wen Bai

School of Pharmaceutical Sciences South−Central Minzu University Wuhan P. R. China

Z

Zheng‐Hui Li

School of Pharmaceutical Sciences South−Central Minzu University Wuhan P. R. China

R

Rong Huang

X

Xiao‐Hua Chen

State Key Laboratory of Drug Research Chinese Academy of Sciences Shanghai Institute of Materia Medica Shanghai P. R. China

X

Xinxiang Lei

State Key Laboratory of Natural Product Chemistry, Lanzhou Magnetic Resonance Center, College of Chemistry and Chemical Engineering