Elevated miR-130a/miR130b/miR-152 expression reduces intracellular ATP levels in the pancreatic beta cell

Jones K Ofori1,2, Vishal A Salunkhe1,2, Annika Bagge2,3

  • 1Islet Cell Exocytosis, Department of Clinical Sciences-Malmö, Lund University, Malmö, 205 02, Sweden.

Scientific Reports
|March 24, 2017
PubMed

Insights

Three microRNAs (miR-130a-3p, miR-130b-3p, miR-152-3p) are elevated in type-2 diabetes, impairing insulin secretion by affecting ATP production in pancreatic beta cells. These microRNAs represent potential therapeutic targets for diabetes.

Area of Science:

  • Molecular Biology
  • Endocrinology
  • Genetics

Background:

  • MicroRNAs regulate gene expression and are implicated in type-2 diabetes pathogenesis.
  • Dysregulated microRNA expression in pancreatic beta cells contributes to impaired insulin secretion.

Purpose of the Study:

  • To investigate the role of specific microRNAs (miR-130a-3p, miR-130b-3p, miR-152-3p) in type-2 diabetes.
  • To determine the impact of these microRNAs on pancreatic beta cell function and ATP production.

Main Methods:

  • Measured microRNA levels in pancreatic islets from hyperglycaemic donors and Goto-Kakizaki rats.
  • Assessed the regulatory effects of these microRNAs on PDHA1 and GCK proteins.
  • Overexpressed microRNAs in INS-1 832/13 cells to evaluate effects on ATP/ADP ratio and beta cell functions.

Main Results:

  • miR-130a-3p, miR-130b-3p, and miR-152-3p levels were elevated in hyperglycaemic and type-2 diabetes model islets.
  • These microRNAs negatively regulate PDHA1 and GCK, proteins crucial for ATP production.
  • MicroRNA overexpression disrupted ATP/ADP ratio and impaired glucose-stimulated insulin secretion, insulin biosynthesis, and processing.

Conclusions:

  • Elevated miR-130a-3p, miR-130b-3p, and miR-152-3p contribute to type-2 diabetes by impairing pancreatic beta cell function.
  • These microRNAs represent potential therapeutic targets for type-2 diabetes treatment.

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