ReviewThe Journal of biological chemistry2024
O-GlcNAc transferase congenital disorder of glycosylation (OGT-CDG): Potential mechanistic targets revealed by evaluating the OGT interactome.
Review in The Journal of biological chemistry, 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.
- Pathogenic O-GlcNAc dyshomeostasis is associated with cortical malformations and hyperactivity.eLife · 2026Article
- Cross-talk between glycosylation pathways: Mechanistic insights and implications for human diseases.Molecular metabolism · 2026Review
- Genetic Rescue of Pathogenic O-GlcNAc Dyshomeostasis Associated with Microcephaly and Motor Deficits.eNeuro · 2026Article
- Systematic mapping of O-GlcNAc transferase and O-GlcNAcase defines disease-associated variants.The Journal of biological chemistry · 2026Article
- Targeting O-GlcNAcylation: Novel Therapeutic Strategies for Neurological Disease.Molecular neurobiology · 2025Review
- Zscan4 as a Candidate Conveyor of Early Developmental Defects in O-GlcNAc Transferase Intellectual Disability.Molecular & cellular proteomics : MCP · 2025Article
- Multi-domain O-GlcNAcase structures reveal allosteric regulatory mechanisms.Nature communications · 2025Article
- Article
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Authors and funding
8 authors.
Funding
Abstract
O-GlcNAc transferase (OGT) is the sole enzyme responsible for the post-translational modification of O-GlcNAc on thousands of target nucleocytoplasmic proteins. To date, nine variants of OGT that segregate with OGT Congenital Disorder of Glycosylation (OGT-CDG) have been reported and characterized. Numerous additional variants have been associated with OGT-CDG, some of which are currently undergoing investigation. This disorder primarily presents with global developmental delay and intellectual disability (ID), alongside other variable neurological features and subtle facial dysmorphisms in patients. Several hypotheses aim to explain the etiology of OGT-CDG, with a prominent hypothesis attributing the pathophysiology of OGT-CDG to mutations segregating with this disorder disrupting the OGT interactome. The OGT interactome consists of thousands of proteins, including substrates as well as interactors that require noncatalytic functions of OGT. A key aim in the field is to identify which interactors and substrates contribute to the primarily neural-specific phenotype of OGT-CDG. In this review, we will discuss the heterogenous phenotypic features of OGT-CDG seen clinically, the variable biochemical effects of mutations associated with OGT-CDG, and the use of animal models to understand this disorder. Furthermore, we will discuss how previously identified OGT interactors causal for ID provide mechanistic targets for investigation that could explain the dysregulated gene expression seen in OGT-CDG models. Identifying shared or unique altered pathways impacted in OGT-CDG patients will provide a better understanding of the disorder as well as potential therapeutic targets.
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Registered trials
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