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Updated: Aug 14, 2026

A Method for Mouse Pancreatic Islet Isolation and Intracellular cAMP Determination
Published on: June 25, 2014
Dexamethasone suppresses phospholipase C activation and insulin secretion from isolated rat islets
Walter S Zawalich1, Gregory J Tesz, Hanae Yamazaki
1Yale University School of Nursing, New Haven, CT 06536-0740, USA. walter.zawalich@yale.edu
Abstract:
Dexamethasone inhibits insulin secretion from isolated islets. In the present experiments, possible underlying biochemical mechanisms responsible for defective secretion were explored. Dexamethasone (1 micromol/L) had no immediate deleterious effect on 15 mmol/L glucose-induced insulin release from perifused rat islets. However, a 3-hour preincubation period with 1 micromol/L dexamethasone resulted in parallel reductions in both the first (64%) and second phases (74%) of 15 mmol/L glucose-induced insulin secretion monitored during a dynamic perifusion. When measured after the perifusion, there were no differences in insulin content or in the capacity of control or dexamethasone-treated islets to use glucose. Dexamethasone (1 micromol/L) preexposure also reduced phorbol ester- and potassium-induced secretion. In additional experiments, islets were labeled for 3 hours with 3H-inositol in the presence or absence of 1 micromol/L dexamethasone. The steroid did not affect total 3H-inositol incorporation during the labeling period. However, the capacity of 15 mmol/L glucose, 30 mmol/L KCl, and 100 micromol/L carbachol to activate phospholipase C (PLC), monitored by the accumulation of labeled inositol phosphates, was significantly reduced in dexamethasone-pretreated islets. Inclusion of the nuclear glucocorticoid receptor antagonist RU486 (mifepristone, 10 micromol/L) abolished the adverse effects of dexamethasone on both glucose-induced inositol phosphate accumulation and insulin secretion. Quantitative Western blot analyses revealed that the islet contents of PLCdelta1, PLCbeta1, beta2, beta3, and protein kinase C alpha were unaffected by dexamethasone pretreatment. These findings demonstrate that dexamethasone pretreatment impairs insulin secretion via a genomic action and that impaired activation of the PLC/protein kinase C signaling system is involved in the evolution of its inhibitory effect on secretion.
Insights
Dexamethasone impairs glucose-stimulated insulin secretion by affecting phospholipase C (PLC) activation. This effect is mediated through genomic actions and can be blocked by the glucocorticoid receptor antagonist RU486.
Area of Science:
- Endocrinology
- Molecular Biology
- Cell Signaling
Background:
- Dexamethasone is known to inhibit insulin secretion from pancreatic islets.
- The precise biochemical mechanisms underlying this inhibition require further elucidation.
Purpose of the Study:
- To investigate the biochemical mechanisms by which dexamethasone impairs insulin secretion.
- To explore the role of phospholipase C (PLC) signaling in dexamethasone-induced inhibition of insulin release.
Main Methods:
- Isolated rat islets were preincubated with dexamethasone and then subjected to dynamic perifusion to measure insulin secretion.
- Glucose utilization, insulin content, and the activation of PLC were assessed.
- RU486, a nuclear glucocorticoid receptor antagonist, was used to investigate the mechanism of action.
- Western blot analysis was performed to quantify specific protein levels.
Main Results:
- Dexamethasone pretreatment significantly reduced both phases of glucose-induced insulin secretion.
- Impaired activation of PLC was observed in dexamethasone-treated islets, evidenced by reduced inositol phosphate accumulation.
- The inhibitory effects of dexamethasone were abolished by RU486, indicating a genomic mechanism.
- Key components of the PLC/protein kinase C pathway were not altered in their total content.
Conclusions:
- Dexamethasone impairs insulin secretion through a genomic action involving the glucocorticoid receptor.
- Reduced activation of the phospholipase C (PLC) signaling pathway is a key mechanism in dexamethasone's inhibitory effect on insulin secretion.
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