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Updated: Jun 16, 2026

Genetic Barcoding with Fluorescent Proteins for Multiplexed Applications
Published on: April 14, 2015
Precision Mapping of Direct Membrane Protein Interactions via Binding-Induced DNA Barcode Transfer Labeling
Weikang Li1, Xigao Chen2, Nachuan Wen1,3
1Molecular Science and Biomedicine Laboratory (MBL), State Key Laboratory of Chemo/Biosensing and Chemometrics, College of Chemistry and Chemical Engineering, College of Biology, Aptamer Engineering Center of Hunan Province, Hunan University, Changsha, Hunan 410082, China.
None:
Cell-cell communication is governed by dynamic membrane protein interactions. Precise tracking of direct protein binding and its functional outcomes across cellular engagements is essential for decoding complex biological processes. While proximity-based labeling techniques convert transient interactions into stable signals, they often fail to distinguish direct binding from nonspecific associations. In this work, we developed a binding-induced labeling strategy for 1:1 DNA barcode transfer between interacting proteins at the cellular interface. Using the PD1/PD-L1 immune checkpoint as a model, we designed functionalized aptamer probes targeting PD-L1 on cancer cells, which upon PD1/PD-L1 binding were covalently transferred to PD1 on T cells via click chemistry. By incorporating barcoded primer sequences and programmable DNA signal amplification, we achieved sensitive and sequential tracking of individual PD1/PD-L1 binding events across multiple cellular interactions. Furthermore, with the integration of single-cell transcriptional profiling, this platform revealed the progressive impact of iterative PD1/PD-L1 binding on T-cell reprogramming.
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