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DNA-Alkyne-Chain Probes Enable N-Glycosite-Resolved GlycoBarcoding of Cell-Surface Proteins.

Created on 27 Jul 2026

Authors

Huimin Bao, Yao Yao, Rui Zhang, Jianpu Tang, Tailing Xue, Cao Fang, Dayong Yang

Published in

Analytical chemistry. Jul 27, 2026. Epub Jul 27, 2026.

Abstract

Cell surface glycoproteins are vital mediators of intercellular communication and primary targets for therapeutic intervention. However, the comprehensive profiling of the "surface glycome" on living cells remains hindered by the low abundance of these proteins and the inherent complexity of glycosylation. Here, we present GlycoCSP, a site-specific glycoproteomics strategy that utilizes alkyne-functionalized DNA scaffolds to achieve high-resolution GlycoBarcoding of cell surface proteins. By leveraging the spatial reach of extended DNA chains and a high-density alkyne array, GlycoCSP ensures specific labeling and robust covalent capture of surface glycoproteins. This platform integrates protein-level enrichment with an orthogonal tandem release proteolysis, enabling the precise mapping of N-glycosylation signatures at the site level. Applying GlycoCSP to live cells, we identified 2,016 extracellular N-glycosylation sites across 1,420 proteins, validated by deamidation mass shifts and the canonical N-X-S/T/C motif. Comparative analysis across breast cancer cell lines revealed that site-specific glycosylation occupancy provides a distinct layer of surfaceome heterogeneity that is independent of protein abundance. By providing a mass spectrometry-readable framework for decoding the surface glycode, GlycoCSP enables the unbiased discovery of glycosylation-dependent biomarkers and therapeutic targets previously inaccessible to conventional proteomics.

PMID:
42504552
Bibliographic data and abstract were imported from PubMed on 27 Jul 2026.

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