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Updated: Jan 9, 2026

Simultaneous Affinity Enrichment of Two Post-Translational Modifications for Quantification and Site Localization
Published on: February 27, 2020
A Streamlined Sequential Enrichment Strategy for Multi-PTM Profiling from Low Micrograms of Samples
Geyi Zheng1,2, Ling Zhao2, Mingxiu Liang2
1Department of Chemistry, School of Science, Southern University of Science and Technology, Shenzhen 518055, China.
Abstract:
Post-translational modifications (PTMs) are critical regulators of protein function and are involved in many human diseases. However, comprehensive analysis of multiple PTM types from limited biological material remains a significant challenge, primarily due to the low stoichiometry and sample loss during intricate preparation procedures. Herein, we developed a novel, streamlined sequential enrichment strategy for the simultaneous analysis of the N-glycoproteome, phosphoproteome, ubiquitinome, and global proteome from a single, microscale sample (multi-PTM profiling strategy). Our strategy integrates HILIC beads for N-glycopeptides enrichment, Ti4+-IMAC beads for phosphopeptides enrichment, K-ε-GG antibody for ubiquitinated peptides enrichment, and C18 membrane for global proteome analysis. This entire process was optimized for reducing sample loss, simplifying operation procedures, and reducing time expenditure. Applying this strategy to a single, 20 μg sample of unstimulated and unfractionated human embryonic kidney 293T tryptic peptides, we identified 6229 N-glycosites, 20,726 confident phosphosites, 4368 confident K-ε-GG sites, and 7968 protein groups. Remarkably, even when the peptide input was reduced to 1 μg, 1899 N-glycosites, 11,924 confident phosphosites, 304 confident K-ε-GG sites, and 7268 protein groups were identified. Our strategy was also successfully applied for multi-PTM profiling of complex biological matrices, including 20 μg of mouse tissue peptides and as little as 1 μL of human plasma. We expect that this sensitive and efficient multi-PTM profiling strategy is promising for the PTM crosstalk study and biomarker discovery with precious clinical materials.
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