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Updated: Mar 18, 2026

A Method for Mouse Pancreatic Islet Isolation and Intracellular cAMP Determination
Published on: June 25, 2014
PI3 kinases p110α and PI3K-C2β negatively regulate cAMP via PDE3/8 to control insulin secretion in mouse and human
Jelena Kolic1, Jocelyn E Manning Fox1, Oleg G Chepurny2
1Department of Pharmacology, and the Alberta Diabetes Institute, University of Alberta, Edmonton, Alberta, T6G 2E1, Canada.
Objectives:
Phosphatidylinositol-3-OH kinase (PI3K) signalling in the endocrine pancreas contributes to glycaemic control. However, the mechanism by which PI3K modulates insulin secretion from the pancreatic beta cell is poorly understood. Thus, our objective was two-fold; to determine the signalling pathway by which acute PI3K inhibition enhances glucose-stimulated insulin secretion (GSIS) and to examine the role of this pathway in islets from type-2 diabetic (T2D) donors.
Methods:
Isolated islets from mice and non-diabetic or T2D human donors, or INS 832/13 cells, were treated with inhibitors of PI3K and/or phosphodiesterases (PDEs). The expression of PI3K-C2β was knocked down using siRNA. We measured insulin release, single-cell exocytosis, intracellular Ca(2+) responses ([Ca(2+)]i) and Ca(2+) channel currents, intracellular cAMP concentrations ([cAMP]i), and activation of cAMP-dependent protein kinase A (PKA) and protein kinase B (PKB/AKT).
Results:
The non-specific PI3K inhibitor wortmannin amplifies GSIS, raises [cAMP]i and activates PKA, but is without effect in T2D islets. Direct inhibition of specific PDE isoforms demonstrates a role for PDE3 (in humans and mice) and PDE8 (in mice) downstream of PI3K, and restores glucose-responsiveness of T2D islets. We implicate a role for the Class II PI3K catalytic isoform PI3K-C2β in this effect by limiting beta cell exocytosis.
Conclusions:
PI3K limits GSIS via PDE3 in human islets. While inhibition of p110α or PIK-C2β signalling per se, may promote nutrient-stimulated insulin release, we now suggest that this signalling pathway is perturbed in islets from T2D donors.
Insights
Phosphatidylinositol-3-OH kinase (PI3K) limits glucose-stimulated insulin secretion (GSIS) via phosphodiesterase 3 (PDE3) in human islets. This pathway is disrupted in type-2 diabetes, suggesting therapeutic potential.
Area of Science:
- Endocrinology
- Molecular Biology
- Cell Biology
Background:
- Phosphatidylinositol-3-OH kinase (PI3K) signaling in pancreatic beta cells is crucial for glycemic control.
- The precise mechanisms by which PI3K influences insulin secretion remain incompletely understood.
- Investigating PI3K's role is vital for understanding and potentially treating diabetes.
Purpose of the Study:
- To elucidate the signaling pathway through which acute PI3K inhibition enhances glucose-stimulated insulin secretion (GSIS).
- To determine if this pathway is functional in pancreatic islets from type-2 diabetic (T2D) donors.
- To identify potential therapeutic targets for T2D.
Main Methods:
- Isolated human and mouse pancreatic islets and INS 832/13 cells were treated with PI3K and phosphodiesterase (PDE) inhibitors.
- PI3K-C2β expression was reduced using siRNA.
- Measurements included insulin release, exocytosis, intracellular calcium, cAMP levels, and kinase activation.
Main Results:
- Non-specific PI3K inhibition amplified GSIS, increased cAMP, and activated PKA in non-diabetic islets but not in T2D islets.
- Inhibition of PDE3 (human/mouse) and PDE8 (mouse) downstream of PI3K restored glucose-responsiveness in T2D islets.
- PI3K-C2β was implicated in limiting beta cell exocytosis.
Conclusions:
- PI3K signaling negatively regulates GSIS in human islets, acting via PDE3.
- Inhibition of specific PI3K isoforms may enhance insulin release.
- The identified PI3K-PDE3 pathway is impaired in islets from T2D donors, highlighting its relevance to the disease.
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