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Updated: Aug 15, 2026

Assessing Replication and Beta Cell Function in Adenovirally-transduced Isolated Rodent Islets
Published on: June 25, 2012
Interrelationship of islet metabolism, adenosine triphosphate content and insulin release
Abstract:
The oxidation of some exogenous substrates and their effects on ATP content and insulin release in mouse pancreatic islets were measured. The ATP concentration of islets incubated without exogenous substrate shows a gradual decrease, which can be prevented by glucose or mannose (20mm) or leucine (2.5mm); d-glyceraldehyde (5mm) is as effective as glucose (5mm); fructose or N-acetylglucosamine (20mm), pyruvate (10mm) and dl-3-hydroxybutyrate (2mm) are less effective; galactose (20mm), acetate (10mm), octanoate (2mm) and succinate (10mm) have no ATP-maintaining ability. Islets oxidize glucose, mannose, glyceraldehyde, leucine and, less readily, N-acetylglucosamine and glucosamine; galactose, however, is poorly metabolized. Mannoheptulose inhibits the oxidation of glucose but not of glyceraldehyde. Insulin release, measured over a 2h incubation, is stimulated by glucose, mannose, leucine, glyceraldehyde or glucosamine but not by fructose or N-acetylglucosamine. The latter, however, potentiates the effects of glucose or glyceraldehyde (5mm) or leucine (2.5mm) on release; the potentiating effects are inhibited by mannoheptulose, which also blocks glucose-, but not glyceraldehyde- or leucine-stimulated release. In the presence of glucose (20mm), metabolic inhibitors depress insulin release and islet ATP content in parallel. However, rates of insulin release and ATP content measured after incubation with various combinations of exogenous substrates do not appear to be correlated. Sulphonylureas stimulate insulin release but decrease islet ATP concentrations. These results provide further evidence of a close association between the metabolic activity of exogenous substrates and their ability to initiate insulin release. Glucoreceptor models are formulated in the light of these observations and discussed.
Insights
Exogenous substrates influence pancreatic islet ATP levels and insulin release. Glucose, mannose, and leucine maintain ATP and stimulate insulin secretion, highlighting substrate metabolism
Area of Science:
- Metabolic regulation of insulin secretion
- Pancreatic islet cell function
- Substrate oxidation and ATP production
Background:
- Insulin release from pancreatic islets is tightly regulated by nutrient availability.
- Understanding how different exogenous substrates affect islet metabolism and insulin secretion is crucial for metabolic research.
Purpose of the Study:
- To investigate the effects of various exogenous substrates on ATP content and insulin release in mouse pancreatic islets.
- To elucidate the relationship between substrate metabolism and the initiation of insulin secretion.
Main Methods:
- Incubation of mouse pancreatic islets with different exogenous substrates.
- Measurement of islet ATP content.
- Quantification of insulin release over a 2-hour period.
- Assessment of substrate oxidation rates.
- Use of metabolic inhibitors and mannoheptulose to probe metabolic pathways.
Main Results:
- Glucose, mannose, and leucine prevented ATP decrease and stimulated insulin release.
- Glyceraldehyde was effective in maintaining ATP and stimulating release, similar to glucose.
- Fructose, N-acetylglucosamine, pyruvate, and dl-3-hydroxybutyrate were less effective.
- Galactose, acetate, octanoate, and succinate did not maintain ATP levels.
- Mannoheptulose inhibited glucose oxidation but not glyceraldehyde oxidation.
- N-acetylglucosamine potentiated glucose- or glyceraldehyde-stimulated insulin release.
- Sulphonylureas stimulated insulin release but decreased ATP content.
Conclusions:
- Exogenous substrate metabolism is closely linked to insulin release initiation in pancreatic islets.
- Specific substrates differentially impact islet ATP levels and insulin secretion.
- The findings support the development of glucoreceptor models for understanding nutrient sensing in islets.
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