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Updated: Jul 16, 2026

High-resolution Respirometry to Measure Mitochondrial Function of Intact Beta Cells in the Presence of Natural Compounds
Published on: January 23, 2018
Exendin-4 improves high glucose-induced mitochondrial dysfunction of pancreatic β-cells via PKA/Drp1 signaling
Jiahao Zhao1, Xin Ling2, Siwen Fan1
1Jiangsu Key Laboratory of New Drug Research and Clinical Pharmacy, Xuzhou Medical University , Xuzhou, Jiangsu Province, China.
Abstract:
The development of type 2 diabetes mellitus is closely associated with mitochondrial dysfunction of pancreatic β-cells, but the mechanisms by which glucagon-like peptide-1 receptor activation preserves mitochondrial homeostasis under glucotoxic conditions remain incompletely understood. Herein, we investigated whether Exendin-4 protects β-cells against chronic high glucose (HG)-induced mitochondrial injury by regulating the cAMP/PKA/Drp1 signaling pathway. INS-1 β-cells, pancreatic tissues from db/db mice, and isolated primary islets were used to assess oxidative stress, apoptosis, mitochondrial function and morphology, insulin secretion, and cAMP/PKA/Drp1 signaling. Prolonged HG exposure increased oxidative stress and apoptosis, impaired mitochondrial membrane potential, elevated mitochondrial ROS accumulation, reduced ATP content, and promoted mitochondrial fragmentation in INS-1 β-cells. These changes were accompanied by increased Drp1 expression, reduced cAMP levels and PKA activity, decreased inhibitory phosphorylation of Drp1 at Ser637, and increased Ser616 phosphorylation. Exendin-4 attenuated HG-induced oxidative stress and apoptosis, restored mitochondrial function, improved mitochondrial morphology, and partially restored Drp1 Ser637 phosphorylation, whereas it did not significantly affect HG-induced Ser616 phosphorylation. In db/db mice, Exendin-4 improved metabolic parameters and alleviated β-cell apoptosis, with partial recovery of Drp1 Ser637 phosphorylation in pancreatic islets. Furthermore, glucose-stimulated insulin secretion assays in isolated primary islets showed that Exendin-4 improved β-cell secretory function in islets isolated from db/db mice. Pharmacological inhibition of PKA with H89 attenuated Exendin-4-induced Drp1 Ser637 phosphorylation and mitochondrial protection. Collectively, these results suggest that Exendin-4 protects pancreatic β-cells against HG-induced mitochondrial dysfunction and β-cell injury by restoring PKA-associated inhibitory phosphorylation of Drp1 at Ser637 and improving mitochondrial dynamics.
Insights
Exendin-4 protects pancreatic beta-cells from high glucose damage by regulating the cAMP/PKA/Drp1 pathway. This mechanism preserves mitochondrial function and insulin secretion, crucial for managing type 2 diabetes mellitus.
Area of Science:
- Endocrinology
- Cell Biology
- Mitochondrial Biology
Background:
- Type 2 diabetes mellitus is linked to pancreatic beta-cell mitochondrial dysfunction.
- Mechanisms of glucagon-like peptide-1 receptor activation in preserving mitochondrial homeostasis under glucotoxicity are not fully understood.
Purpose of the Study:
- To investigate if Exendin-4 protects beta-cells against chronic high glucose (HG)-induced mitochondrial injury.
- To determine if this protection involves the cAMP/PKA/Drp1 signaling pathway.
Main Methods:
- Utilized INS-1 beta-cells, db/db mouse pancreatic tissues, and primary islets.
- Assessed oxidative stress, apoptosis, mitochondrial function/morphology, insulin secretion, and cAMP/PKA/Drp1 signaling.
- Employed Exendin-4 treatment and PKA inhibition (H89).
Main Results:
- HG induced oxidative stress, apoptosis, and mitochondrial fragmentation in beta-cells, linked to altered Drp1 phosphorylation.
- Exendin-4 attenuated HG-induced damage, restored mitochondrial function, and partially restored Drp1 Ser637 phosphorylation.
- Exendin-4 improved metabolic parameters and beta-cell function in db/db mice; PKA inhibition blocked Exendin-4's protective effects.
Conclusions:
- Exendin-4 protects pancreatic beta-cells from high glucose-induced mitochondrial dysfunction and injury.
- This protection is mediated by restoring PKA-associated inhibitory phosphorylation of Drp1 at Ser637, improving mitochondrial dynamics.
- Findings highlight a key pathway for therapeutic intervention in type 2 diabetes mellitus.
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