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Published on: January 23, 2018
Genetic Reduction of Glucose Metabolism Preserves Functional β-Cell Mass in KATP-Induced Neonatal Diabetes
Zihan Yan1, Manuela Fortunato1, Zeenat A Shyr1
1Division of Endocrinology, Metabolism and Lipid Research, Department of Medicine, Washington University School of Medicine, St. Louis, MO.
Abstract:
β-Cell failure and loss of β-cell mass are key events in diabetes progression. Although insulin hypersecretion in early stages has been implicated in β-cell exhaustion/failure, loss of β-cell mass still occurs in KATP gain-of-function (GOF) mouse models of human neonatal diabetes in the absence of insulin secretion. Thus, we hypothesize that hyperglycemia-induced increased β-cell metabolism is responsible for β-cell failure and that reducing glucose metabolism will prevent loss of β-cell mass. To test this, KATP-GOF mice were crossed with mice carrying β-cell-specific glucokinase haploinsufficiency (GCK+/-), to genetically reduce glucose metabolism. As expected, both KATP-GOF and KATP-GOF/GCK+/- mice showed lack of glucose-stimulated insulin secretion. However, KATP-GOF/GCK+/- mice demonstrated markedly reduced blood glucose, delayed diabetes progression, and improved glucose tolerance compared with KATP-GOF mice. In addition, decreased plasma insulin and content, increased proinsulin, and augmented plasma glucagon observed in KATP-GOF mice were normalized to control levels in KATP-GOF/GCK+/- mice. Strikingly, KATP-GOF/GCK+/- mice demonstrated preserved β-cell mass and identity compared with the marked decrease in β-cell identity and increased dedifferentiation observed in KATP-GOF mice. Moreover KATP-GOF/GCK+/- mice demonstrated restoration of body weight and liver and brown/white adipose tissue mass and function and normalization of physical activity and metabolic efficiency compared with KATP-GOF mice. These results demonstrate that decreasing β-cell glucose signaling can prevent glucotoxicity-induced loss of insulin content and β-cell failure independently of compensatory insulin hypersecretion and β-cell exhaustion.
Insights
Reducing glucose metabolism in pancreatic beta cells prevents diabetes progression and beta-cell loss. This study highlights a novel therapeutic target for diabetes by targeting beta-cell metabolism.
Area of Science:
- Endocrinology
- Metabolic Diseases
- Molecular Biology
Background:
- Beta-cell failure and loss of mass are central to diabetes progression.
- While insulin hypersecretion is implicated in beta-cell exhaustion, mass loss occurs even without it in KATP gain-of-function (GOF) models.
- Hyperglycemia-induced beta-cell metabolism is hypothesized to drive failure and mass loss.
Purpose of the Study:
- To investigate if reducing glucose metabolism prevents beta-cell failure and mass loss.
- To test the hypothesis that hyperglycemia-induced beta-cell metabolism causes failure.
Main Methods:
- KATP-GOF mice were crossed with mice having beta-cell-specific glucokinase haploinsufficiency (GCK+/-) to reduce glucose metabolism.
- Evaluated glucose tolerance, insulin secretion, beta-cell mass, identity, and systemic metabolic parameters.
Main Results:
- KATP-GOF/GCK+/- mice showed reduced blood glucose, delayed diabetes, and improved glucose tolerance compared to KATP-GOF mice.
- Beta-cell mass and identity were preserved in KATP-GOF/GCK+/- mice, unlike in KATP-GOF mice.
- Systemic metabolic function, body weight, and tissue mass were restored in KATP-GOF/GCK+/- mice.
Conclusions:
- Decreasing beta-cell glucose metabolism prevents glucotoxicity-induced beta-cell failure and insulin content loss.
- This protective effect occurs independently of compensatory insulin hypersecretion and beta-cell exhaustion.
- Targeting beta-cell glucose metabolism offers a potential therapeutic strategy for diabetes.
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