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A Method for Mouse Pancreatic Islet Isolation and Intracellular cAMP Determination
Published on: June 25, 2014
P2Y receptor activation enhances insulin release from pancreatic beta-cells by triggering the cyclic AMP/protein
H Chevassus1, A Roig, C Belloc
1Laboratory of Pharmacology, Research Unit UPRES EA 1677 and UMR CNRS 5094, Faculty of Medicine, Montpellier I University, 4 Boulevard Henri IV, 34060 Montpellier Cedex 1, France.
Abstract:
Adenine nucleotides stimulate insulin secretion by binding to P2 receptors of the pancreatic beta-cells; the stimulus-secretion coupling is not yet clearly established and may depend on the receptor subtype. The aim of the present study was to further investigate the mechanism whereby P2Y receptor agonists enhance glucose-induced insulin secretion. Experiments were performed in rat pancreatic islets and in the INS-1 secreting cell line in the presence of a slightly stimulating glucose concentration (8.3 mmol/l). In isolated islets, the P2Y receptor agonist ADPbetaS (50 micromol/l) induced a significant fivefold increase in the cyclic AMP (cAMP) content, from 43.4+/-3.7 fmol/10 islets in controls to 210.6+/-12.0; it still induced a 4.5-fold increase in cAMP content in the absence of calcium. In another series of experiments, ADPbetaS (50 micromol/l) significantly increased glucose-induced insulin secretion from 7.7+/-0.6 ng/3 islets in controls to 11.2+/-1.0. The adenylyl cyclase inhibitor SQ 22,536 (9-[tetrahydro-2-furanyl]-9 H-purin-6-amine; 100 micromol/l), which was ineffective alone, completely prevented the stimulating effect of ADPbetaS. In a set of experiments in which ADPbetaS increased glucose-induced insulin secretion from 10.0+/-0.7 ng/3 islets to 12.6+/-0.8, the inhibitor of cAMP-dependent protein kinase, TPCK (tos-phe-chloromethylketone; 3 micromol/l), which was ineffective alone, also prevented the stimulating effect of ADPbetaS. In incubated INS-1 cells, the P2Y receptor ligand ATPalphaS increased significantly both the content of cAMP and the release of insulin, in a concentration-dependent manner in the range of 50-150 micromol/l; the insulin release was significantly correlated with the cAMP content. In conclusion, the present results show that P2Y receptor agonists, ADPbetaS and ATPalphaS, amplify glucose-induced insulin secretion by activating beta-cell adenylyl cyclase and the subsequent cAMP/protein kinase A signaling pathway.
Insights
Adenine nucleotides, specifically P2Y receptor agonists like ADPbetaS and ATPalphaS, amplify glucose-induced insulin secretion. This occurs by activating beta-cell adenylyl cyclase, increasing cyclic AMP (cAMP), and activating the cAMP/protein kinase A pathway.
Area of Science:
- Endocrinology
- Cell Signaling
- Molecular Biology
Background:
- Adenine nucleotides are known to stimulate insulin secretion via P2 receptors on pancreatic beta-cells.
- The precise mechanism of stimulus-secretion coupling, particularly the role of different receptor subtypes, requires further elucidation.
Purpose of the Study:
- To investigate the mechanism by which P2Y receptor agonists enhance glucose-induced insulin secretion.
- To determine the role of cyclic AMP (cAMP) and downstream signaling pathways in this process.
Main Methods:
- Experiments were conducted using rat pancreatic islets and the INS-1 cell line.
- P2Y receptor agonists (ADPbetaS, ATPalphaS) were applied in the presence of a stimulating glucose concentration.
- Measurements included cyclic AMP (cAMP) content, insulin secretion, and the effects of adenylyl cyclase and protein kinase A inhibitors (SQ 22,536, TPCK).
Main Results:
- ADPbetaS significantly increased cAMP content and glucose-induced insulin secretion in isolated islets, independent of extracellular calcium.
- The adenylyl cyclase inhibitor SQ 22,536 blocked the stimulatory effect of ADPbetaS on insulin secretion.
- TPCK, an inhibitor of cAMP-dependent protein kinase, also prevented the ADPbetaS-induced enhancement of insulin secretion.
- ATPalphaS increased both cAMP content and insulin release in INS-1 cells in a concentration-dependent manner, with insulin release correlated to cAMP levels.
Conclusions:
- P2Y receptor agonists amplify glucose-induced insulin secretion.
- This amplification is mediated by the activation of beta-cell adenylyl cyclase.
- The subsequent increase in cAMP activates the cAMP/protein kinase A signaling pathway, leading to enhanced insulin secretion.
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