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.

Diabetes
|March 16, 2022
PubMed

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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