Micro- and macro- heterogeneity of N-glycoproteome remodeling in endoplasmic reticulum stress

N-glycosylation plays essential roles in the folding, trafficking, and maturation of proteins in the secretory pathways, but how individual protein- and site- specific glycosylation rewires under endoplasmic reticulum (ER) stress is unknown. Particularly, intact glycopeptide data that retain the connectivity between glycosylation sites and the attached glycans are needed to reveal the micro- and macro- heterogeneity of N-glycosylation sites and their permutations in stressed cells. Here, we developed and optimized a magnetic polyethyleneimine boronic acid-containing scaffold (mPBA) enrichment workflow to achieve sensitive and broad enrichment of intact glycopeptides for mass spectrometry analysis, requiring only 0.1 to 0.5 mg total peptide input. With this method, we performed a large intact glycopeptide comparative study, systematically analyzing 13,759 unique protein-, site-, and glycoform combinations, termed glycopeptidoforms, in normal and stressed human cells. The data reveals a dynamic rewiring of N-glycosylation involving hundreds of proteins with complex protein-, site-, and glycan- specific granularity. The magnitude of differential glycosylation far exceeds that of protein expression changes. Individual glycoform reconfigurations can be observed that indicate likely disruptions within specific steps in protein maturation and trafficking. Mannose trimming emerges as a shared disruption across multiple proteins, suggesting a processing bottleneck of the ER stress glycoproteome. Together, these results reveal molecular details into the remodeling of protein secretory pathways upon ER stress and highlight the utility of mPBA for sensitive N-glycoproteomics studies. The data can be visualized on https://glycoproteome.info.

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Publication Details

Journal
Molecular & Cellular Proteomics
Published
2026-09-01
DOI
https://doi.org/10.1016/j.mcpro.2026.101653
Primary Topic
Glycosylation and Glycoproteins Research
Type
article
Field-Weighted Citation Impact
0.00

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article

Micro- and macro- heterogeneity of N-glycoproteome remodeling in endoplasmic reticulum stress

Pandi Boomathi Pandeswari, Maggie P. Y. Lam, Andrew Mongin, Edward Lau et al.
Molecular & Cellular Proteomics
Glycosylation and Glycoproteins Research
article

Micro- and macro- heterogeneity of N-glycoproteome remodeling in endoplasmic reticulum stress

Pandi Boomathi Pandeswari, Maggie P. Y. Lam, Andrew Mongin, Edward Lau, Dominic C. M. Ng, Alexander Black, Tiffany Ngo
article en

Abstract

N-glycosylation plays essential roles in the folding, trafficking, and maturation of proteins in the secretory pathways, but how individual protein- and site- specific glycosylation rewires under endoplasmic reticulum (ER) stress is unknown. Particularly, intact glycopeptide data that retain the connectivity between glycosylation sites and the attached glycans are needed to reveal the micro- and macro- heterogeneity of N-glycosylation sites and their permutations in stressed cells. Here, we developed and optimized a magnetic polyethyleneimine boronic acid-containing scaffold (mPBA) enrichment workflow to achieve sensitive and broad enrichment of intact glycopeptides for mass spectrometry analysis, requiring only 0.1 to 0.5 mg total peptide input. With this method, we performed a large intact glycopeptide comparative study, systematically analyzing 13,759 unique protein-, site-, and glycoform combinations, termed glycopeptidoforms, in normal and stressed human cells. The data reveals a dynamic rewiring of N-glycosylation involving hundreds of proteins with complex protein-, site-, and glycan- specific granularity. The magnitude of differential glycosylation far exceeds that of protein expression changes. Individual glycoform reconfigurations can be observed that indicate likely disruptions within specific steps in protein maturation and trafficking. Mannose trimming emerges as a shared disruption across multiple proteins, suggesting a processing bottleneck of the ER stress glycoproteome. Together, these results reveal molecular details into the remodeling of protein secretory pathways upon ER stress and highlight the utility of mPBA for sensitive N-glycoproteomics studies. The data can be visualized on https://glycoproteome.info.

Molecular & Cellular Proteomics
Institute of Biophysics (BG), Institute of Molecular Biology and Biophysics (RU), University of Colorado Anschutz Medical Campus (US), University of Colorado Denver (US)
American Heart Association, National Heart, Lung, and Blood Institute, National Institute of General Medical Sciences
Openalex Percentile: Top 99%
Glycosylation and Glycoproteins Research
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