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Glucosamine links hyperglycemia to mTORC1 activation and glucose toxicity in diabetes
Yael Riahi1, Aviram Kogot-Levin1, Ziv Teselpapa1
1Diabetes Unit and Endocrine Service, Hadassah Medical Center, The Hebrew University, Jerusalem, Israel.
Abstract:
Hyperglycemia is a principal driver of β cell failure and multiple-organ complications in diabetes. Chronic exposure to hyperglycemia overstimulates mTORC1, disrupting glucose metabolism and promoting ER stress, oxidative stress, and inflammation; however, the upstream metabolic signal(s) linking glucose to mTORC1 activation remains unclear. Here, we identified glucosamine as a key metabolite connecting elevated glucose to mTORC1 signaling in pancreatic islets and kidney, both major targets of hyperglycemic damage. Using 13C6-glucose metabolic labeling in diabetic rodents treated with or without the SGLT2 inhibitor dapagliflozin or insulin, combined with targeted metabolomics and metabolic flux analysis, we found that tissue glucose concentrations strongly correlated with glucosamine. A similar correlation with plasma glucose was conserved in humans with or without type 2 diabetes, and inversely associated with β cell function. In vitro, low-dose glucosamine stimulated mTORC1 in islets and kidney proximal tubule cells in an O-GlcNAcylation-dependent manner. Broad phosphoproteomics and transcriptomics analyses in β cells showed that glucosamine activated mTORC1-regulating pathways, induced oxidative stress, ER stress, and dedifferentiation. Genetic inhibition of β cell mTORC1 via heterozygous Raptor knockout, as well as pharmacologic inhibition of the glucosamine/mTORC1 axis through SGLT2 inhibition, alleviated β cell stress, improved glycemic control, and restored β cell function. These findings identified the glucosamine/mTORC1 pathway as an important mediator of β cell and kidney dysfunction in diabetes.
Insights
High blood sugar damages cells by activating the nutrient sensor mTORC1 via glucosamine. Inhibiting this pathway improves diabetes complications and restores pancreatic beta cell function.
Area of Science:
- Metabolic signaling in diabetes
- Cellular stress pathways
- Organelle dysfunction in hyperglycemia
Background:
- Hyperglycemia drives beta cell failure and organ damage in diabetes.
- Chronic hyperglycemia activates mTORC1, leading to metabolic disruption, ER stress, oxidative stress, and inflammation.
- The specific metabolic signals linking glucose to mTORC1 activation remain largely unknown.
Purpose of the Study:
- To identify the upstream metabolic signals connecting hyperglycemia to mTORC1 activation.
- To investigate the role of glucosamine in mediating hyperglycemic damage to pancreatic islets and kidneys.
- To explore therapeutic strategies targeting the glucosamine/mTORC1 axis.
Main Methods:
- Utilized 13C6-glucose metabolic labeling in diabetic rodent models.
- Performed targeted metabolomics and metabolic flux analysis.
- Conducted in vitro studies with glucosamine on islet and kidney cells, alongside phosphoproteomics and transcriptomics.
Main Results:
- Identified glucosamine as a key metabolite linking elevated glucose to mTORC1 signaling in pancreatic islets and kidneys.
- Demonstrated that glucosamine stimulates mTORC1 in an O-GlcNAcylation-dependent manner.
- Showed that inhibiting the glucosamine/mTORC1 pathway alleviates beta cell stress and improves glycemic control.
Conclusions:
- The glucosamine/mTORC1 pathway is a critical mediator of beta cell and kidney dysfunction in diabetes.
- Targeting this pathway, for example, via SGLT2 inhibition, offers a promising therapeutic approach.
- Understanding this signaling axis provides new insights into diabetes pathophysiology and treatment.
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