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Updated: Jun 8, 2026

Glucose Uptake Measurement and Response to Insulin Stimulation in In Vitro Cultured Human Primary Myotubes
Published on: June 25, 2017
Chronic hyperglycemia reduces substrate oxidation and impairs metabolic switching of human myotubes
Vigdis Aas1, Nina P Hessvik, Marianne Wettergreen
1Faculty of Health Sciences, Oslo University College, Oslo, Norway. vigdis.aas@hf.hio.no
Abstract:
Skeletal muscle of insulin resistant individuals is characterized by lower fasting lipid oxidation and reduced ability to switch between lipid and glucose oxidation. The purpose of the present study was to examine if chronic hyperglycemia would impair metabolic switching of myotubes. Human myotubes were treated with or without chronic hyperglycemia (20mmol/l glucose for 4 days), and metabolism of [(14)C]oleic acid (OA) and [(14)C]glucose was studied. Myotubes exposed to chronic hyperglycemia showed a significantly reduced OA uptake and oxidation to CO(2), whereas acid-soluble metabolites were increased compared to normoglycemic cells (5.5mmol/l glucose). Glucose suppressibility, the ability of acute glucose (5mmol/l) to suppress lipid oxidation, was 50% in normoglycemic cells and reduced to 21% by hyperglycemia. Adaptability, the capacity to increase lipid oxidation with increasing fatty acid availability, was not affected by hyperglycemia. Glucose uptake and oxidation were reduced by about 40% after hyperglycemia, and oxidation of glucose in presence of mitochondrial uncouplers showed that net and maximal oxidative capacities were significantly reduced. Hyperglycemia also abolished insulin-stimulated glucose uptake. Moreover, ATP concentration was reduced by 25% after hyperglycemia. However, none of the measured mitochondrial genes were downregulated nor was mitochondrial DNA content. Microarray and real-time RT-PCR showed that no genes were significantly regulated by chronic hyperglycemia. Addition of chronic lactate reduced both glucose and OA oxidation to the same extent as hyperglycemia. In conclusion, chronic hyperglycemia reduced substrate oxidation in skeletal muscle cells and impaired metabolic switching. The effect is most likely due to an induced mitochondrial dysfunction.
Insights
Chronic hyperglycemia impairs skeletal muscle cells' ability to oxidize lipids and glucose, hindering metabolic flexibility. This dysfunction, likely due to mitochondrial issues, impacts energy production and substrate utilization.
Area of Science:
- Cellular Metabolism
- Mitochondrial Function
- Skeletal Muscle Physiology
Background:
- Insulin resistance is linked to impaired lipid oxidation and metabolic switching in skeletal muscle.
- Chronic hyperglycemia is a hallmark of diabetes and may affect cellular metabolism.
Purpose of the Study:
- To investigate the impact of chronic hyperglycemia on the metabolic switching capabilities of human myotubes.
- To determine if hyperglycemia impairs the oxidation of fatty acids and glucose in skeletal muscle cells.
Main Methods:
- Human myotubes were cultured and exposed to chronic hyperglycemia (20 mmol/l glucose) or normoglycemia (5.5 mmol/l glucose) for 4 days.
- Metabolism of [(14)C]oleic acid (lipid) and [(14)C]glucose was assessed, including substrate uptake, oxidation, and the effects of acute glucose and mitochondrial uncouplers.
- Gene expression and mitochondrial DNA content were analyzed.
Main Results:
- Chronic hyperglycemia significantly reduced oleic acid uptake and oxidation, while increasing acid-soluble metabolites.
- The ability of glucose to suppress lipid oxidation (glucose suppressibility) was markedly reduced by hyperglycemia.
- Glucose uptake, oxidation, and insulin-stimulated glucose uptake were decreased, alongside reduced ATP concentration, suggesting mitochondrial dysfunction.
Conclusions:
- Chronic hyperglycemia impairs substrate oxidation and metabolic switching in skeletal muscle cells.
- The observed effects are likely mediated by induced mitochondrial dysfunction.
- Lactate accumulation may contribute to the metabolic impairments seen in hyperglycemia.
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