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Updated: Aug 2, 2026

Coculture Analysis of Extracellular Protein Interactions Affecting Insulin Secretion by Pancreatic Beta Cells
Published on: June 15, 2013
The extracellular calcium-sensing receptor on human beta-cells negatively modulates insulin secretion
P E Squires1, T E Harris, S J Persaud
1Endocrinology and Reproduction Research Group, School of Biomedical Sciences, King's College London, UK. paul.squires@kcl.ac.uk
Abstract:
The presence and functional significance of the extracellular calcium-sensing receptor (CaR) on human pancreatic beta-cells were investigated. Reverse transcriptase-polymerase chain reaction with primers for the extracellular domain of the CaR expressed in human parathyroid-secreting cells identified a product of the expected size in human pancreatic mRNA. Immunocytochemistry using an antibody against the extracellular region of CaR showed extensive immunoreactivity in insulin- and glucagon-containing cells but not in somatostatin-containing cells. In perifusion experiments, elevations in extracellular Ca2+ produced initial transient increases in insulin secretion, followed by a concentration-dependent and prolonged, but reversible, inhibition of secretion. Microfluorometric measurements of intracellular Ca2+ ([Ca2+]i) in isolated human beta-cells demonstrated that elevations in extracellular Ca2+ (0.5-10 mmol/l) caused rapid elevations in [Ca2+]i. Increases in extracellular Ca2+ caused small increases in the cyclic AMP content of whole human islets. These studies demonstrated that human beta-cells express an extracellular CaR and that activation of the receptor inhibits basal and nutrient-stimulated insulin secretion. The transduction mechanism that mediates this inhibitory effect is unknown, but our results suggest that it is unlikely to be through the adenylate cyclase-cyclic AMP pathway or through the phospholipase C-IP3 pathway. This CaR-mediated inhibitory mechanism may be an important autoregulatory mechanism in the control of insulin secretion.
Insights
Human pancreatic beta-cells possess a calcium-sensing receptor (CaR) that regulates insulin secretion. Activation of this receptor inhibits both basal and nutrient-stimulated insulin release, suggesting an important autoregulatory role.
Area of Science:
- Endocrinology
- Cell Biology
- Molecular Biology
Background:
- The extracellular calcium-sensing receptor (CaR) plays a crucial role in calcium homeostasis.
- Its presence and function in human pancreatic beta-cells, key regulators of glucose metabolism, were previously uncharacterized.
Purpose of the Study:
- To investigate the presence and functional significance of the CaR in human pancreatic beta-cells.
- To determine the effect of CaR activation on insulin secretion and intracellular calcium levels.
Main Methods:
- Reverse transcriptase-polymerase chain reaction (RT-PCR) to detect CaR mRNA.
- Immunocytochemistry to localize CaR protein expression.
- Perifusion studies to assess insulin secretion in response to extracellular calcium.
- Microfluorometry to measure intracellular calcium concentrations ([Ca2+]i).
Main Results:
- CaR mRNA and protein were detected in human pancreatic beta-cells and alpha-cells, but not in delta-cells.
- Elevated extracellular calcium ([Ca2+]e) transiently increased, then inhibited insulin secretion in a concentration-dependent manner.
- [Ca2+]e rapidly increased [Ca2+]i in isolated beta-cells.
- Increased [Ca2+]e caused minor increases in cyclic AMP content.
Conclusions:
- Human pancreatic beta-cells express a functional extracellular calcium-sensing receptor (CaR).
- CaR activation inhibits basal and nutrient-stimulated insulin secretion.
- The inhibitory signaling pathway is not mediated by the adenylate cyclase-cyclic AMP or phospholipase C-IP3 pathways.
- CaR may serve as an important autoregulatory mechanism for controlling insulin secretion.
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