ArticleGlycobiology2024
Studying the O-GlcNAcome of human placentas using banked tissue samples.
Article in Glycobiology, 2024. The graph could read no effect estimate from its abstract, so it casts no vote on the map. Cited by 8 papers.
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Who cites it
8 citing papers in PubMed, 6 citations in OpenAlex.
- Chemical biology tools for the O-GlcNAc modification: Determining systems-level functions and druggability.Current opinion in chemical biology · 2026Review
- Cross-talk between glycosylation pathways: Mechanistic insights and implications for human diseases.Molecular metabolism · 2026Review
- Systematic mapping of O-GlcNAc transferase and O-GlcNAcase defines disease-associated variants.The Journal of biological chemistry · 2026Article
- Mass Spectrometry-Based Proteomics Methods for Systematic Identification and Quantification of Protein O-Glycosylation in Complex Biological Samples.Journal of the American Society for Mass Spectrometry · 2026Review
- Protein O-GlcNAcylation in reproductive biology and the impact of metabolic disease.Human reproduction update · 2025Review
- The O-GlcNAc database: introducing new features and tools developed from community feedback.Analytical and bioanalytical chemistry · 2025Article
- A reference dataset of O-GlcNAc proteins in quadriceps skeletal muscle from mice.Glycobiology · 2025Article
- Mapping O- and N-Glycosylation in Transmembrane and Interface Regions of Proteins: Insights from a Database Search Study.International journal of molecular sciences · 2025Article
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Authors and funding
6 authors at 2 institutions in 3 countries.
Funding
Abstract
O-GlcNAcylation is a dynamic modulator of signaling pathways, equal in magnitude to the widely studied phosphorylation. With the rapid development of tools for its detection at the single protein level, the O-GlcNAc modification rapidly emerged as a novel diagnostic and therapeutic target in human diseases. Yet, mapping the human O-GlcNAcome in various tissues is essential for generating relevant biomarkers. In this study, we used human banked tissue as a sample source to identify O-GlcNAcylated protein targets relevant to human diseases. Using human term placentas, we propose (1) a method to clean frozen banked tissue of blood proteins; (2) an optimized protocol for the enrichment of O-GlcNAcylated proteins using immunoaffinity purification; and (3) a bioinformatic workflow to identify the most promising O-GlcNAc targets. As a proof-of-concept, we used 45 mg of banked placental samples from two pregnancies to generate intracellular protein extracts depleted of blood protein. Then, antibody-based O-GlcNAc enrichment on denatured samples yielded over 2000 unique HexNAc PSMs and 900 unique sites using 300 μg of protein lysate. Due to efficient sample cleanup, we also captured 82 HexNAc proteins with high placental expression. Finally, we provide a bioinformatic tool (CytOVS) to sort the HexNAc proteins based on their cellular localization and extract the most promising O-GlcNAc targets to explore further. To conclude, we provide a simple 3-step workflow to generate a manageable list of O-GlcNAc proteins from human tissue and improve our understanding of O-GlcNAcylation's role in health and diseases.
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