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O-GlcNAc modification, insulin signaling and diabetic complications
1CNRS (UMR 8104), université Paris Descartes, institut Cochin, 22 rue Méchain, Paris, France. tarik.issad@inserm.fr
Abstract:
O-GlcNAc glycosylation (O-GlcNAcylation) corresponds to the addition of N-acetylglucosamine on serine and threonine residues of cytosolic and nuclear proteins. O-GlcNAcylation is a dynamic post-translational modification, analogous to phosphorylation, that regulates the stability, the activity or the subcellular localisation of target proteins. This reversible modification depends on the availability of glucose and therefore constitutes a powerful mechanism by which cellular activities are regulated according to the nutritional environment of the cell. O-GlcNAcylation has been implicated in important human pathologies including Alzheimer disease and type-2 diabetes. Only two enzymes, OGT and O-GlcNAcase, control the O-GlcNAc level on proteins. Therefore, O-GlcNAcylations cannot organize in signaling cascades as observed for phosphorylations. O-GlcNAcylations should rather be considered as a "rheostat" that controls the intensity of the signals traveling through different pathways according to the nutritional status of the cell. Thus, OGT attenuates insulin signal by O-GlcNAcylation of proteins involved in proximal and distal steps in the PI-3 kinase signaling pathway. This negative feedback may be exacerbated when cells are chronically exposed to elevated glucose concentrations and could thereby contribute to alterations in insulin signaling observed in diabetic patients. O-GlcNAcylation also appears to contribute to the deleterious effects of hyperglycaemia on excessive glucose production by the liver and deterioration of β-cell pancreatic function, resulting in worsening of hyperglycaemia (glucotoxicity). Moreover, O-GlcNAcylations directly participate in several diabetic complications. O-GlcNAcylation of eNOS in endothelial cells have been involved in micro- and macrovascular complications. In addition, O-GlcNAcylations activate the expression of profibrotic and antifibrinolytic factors, contributing to vascular and renal dysfunctions.
Insights
O-linked N-acetylglucosamine glycosylation (O-GlcNAcylation) is a glucose-dependent modification regulating protein function. It plays a role in diabetes and Alzheimer's disease by influencing cellular signaling pathways.
Area of Science:
- Biochemistry
- Cell Biology
- Molecular Biology
Background:
- O-linked N-acetylglucosamine glycosylation (O-GlcNAcylation) is a dynamic post-translational modification of serine and threonine residues in cytosolic and nuclear proteins.
- This modification is analogous to phosphorylation, regulating protein stability, activity, and localization, and is sensitive to cellular glucose availability, linking cellular processes to nutritional status.
Purpose of the Study:
- To elucidate the role of O-GlcNAcylation in cellular signaling and its implications in human pathologies.
- To understand how O-GlcNAcylation, regulated by OGT and O-GlcNAcase, functions as a rheostat modulating signal intensity based on nutrient availability.
Main Methods:
- The abstract does not specify experimental methods.
- Focuses on the regulatory role of O-GlcNAcylation by OGT and O-GlcNAcase.
- Discusses the impact of O-GlcNAcylation on signaling pathways like PI-3 kinase.
Main Results:
- O-GlcNAcylation attenuates insulin signaling via the PI-3 kinase pathway, potentially exacerbated by chronic high glucose, contributing to insulin resistance in diabetes.
- O-GlcNAcylation contributes to glucotoxicity, liver glucose overproduction, and pancreatic beta-cell dysfunction.
- O-GlcNAcylation is implicated in diabetic complications, including micro- and macrovascular issues via eNOS modification and promoting profibrotic factors.
Conclusions:
- O-GlcNAcylation acts as a nutritional sensor, influencing cellular signaling and protein function.
- Dysregulation of O-GlcNAcylation is implicated in the pathogenesis of type-2 diabetes and its complications.
- Further research into O-GlcNAcylation could reveal therapeutic targets for metabolic and neurodegenerative diseases.
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