Related Experiment Video
Updated: Aug 18, 2026

Coculture Analysis of Extracellular Protein Interactions Affecting Insulin Secretion by Pancreatic Beta Cells
Published on: June 15, 2013
Elevated beta-cell calmodulin produces a unique insulin secretory defect in transgenic mice
P N Epstein1, T J Ribar, G L Decker
1Department of Cell Biology and Medicine, Baylor College of Medicine, Houston, Texas.
Abstract:
Transgenic mice with elevated levels of beta-cell calmodulin develop severe diabetes even though pancreatic beta-cells contain reserve levels of insulin. Electron microscopic examination of transgenic pancreas confirmed the presence of abundant insulin secretory granules and failed to reveal obvious morphological abnormalities. These observations suggested that excess calmodulin may specifically impair the secretory process. To directly assess the effect of excess calmodulin on beta-cell function we have isolated pancreatic islets from transgenic animals. Transgenic islets from 6- to 8-day-old mice used 40% less glucose than normal islets and contained 58% of the normal insulin content, 90% of the normal glucagon content, and 5-fold higher levels of calmodulin than islets from control mice of the same age. Parallel perifusions of normal and transgenic islets confirmed that excess calmodulin inhibited glucose-stimulated insulin secretion; first phase secretion was reduced by 60%, and second phase secretion was essentially absent. Static assays were performed to assess the response to other secretagogues. All fuel secretagogues tested were ineffective in stimulating insulin secretion from transgenic islets. Secretion in response to depolarizing levels of potassium was also severely impaired. The phosphodiesterase inhibitor 3-isobutyl-1-methyl-xanthine increased transgenic secretion, but not to the level obtained in normal islets. Of the compounds examined, only phorbol 12-myristate 13-acetate and carbachol, two substances thought to act in beta-cells by stimulation of protein kinase-C, produced equivalent secretion in normal and transgenic islets. Phorbol 12-myristate 13-acetate also appeared to restore second phase secretion in transgenic islets. These results indicate that the initial period of calmodulin-induced diabetes is due to a secretory defect. This defect appears to be distal to membrane depolarization and is selective for the second phase of insulin secretion.
Insights
Elevated calmodulin in pancreatic beta-cells impairs insulin secretion, leading to diabetes. This study reveals a specific defect in the second phase of insulin release, distinct from glucose metabolism or membrane depolarization.
Area of Science:
- Endocrinology
- Cell Biology
- Molecular Medicine
Background:
- Pancreatic beta-cells regulate blood glucose through insulin secretion.
- Calmodulin is a key calcium-binding protein involved in cellular signaling.
- Dysregulation of beta-cell function is implicated in diabetes pathogenesis.
Purpose of the Study:
- To investigate the impact of elevated beta-cell calmodulin on insulin secretion and beta-cell function.
- To determine the specific mechanisms by which excess calmodulin affects the secretory process.
Main Methods:
- Isolation of pancreatic islets from transgenic mice with elevated calmodulin.
- Perifusion assays to measure glucose-stimulated insulin secretion.
- Static assays using various secretagogues to assess beta-cell response.
Main Results:
- Transgenic islets exhibited reduced glucose consumption and insulin content.
- Excess calmodulin significantly inhibited glucose-stimulated insulin secretion, particularly the second phase.
- Insulin secretion was impaired in response to fuel secretagogues and potassium depolarization.
- Protein kinase-C activators partially restored insulin secretion, suggesting a defect distal to depolarization.
Conclusions:
- Elevated calmodulin in beta-cells causes a secretory defect leading to diabetes.
- The defect is selective for the second phase of insulin secretion and occurs downstream of membrane depolarization.
- Calmodulin plays a critical role in regulating the insulin secretory process.
Related Concept Videos
Cell Specific Gene Expression
Insulin Secretory Vesicles
Glucose Homeostasis: Pancreatic Islets and Insulin Secretion
Insulin and C-peptide are co-secreted in...
Insulin: Biosynthesis, Chemistry, and Preparation
Damage or functional impairment of β-cells inhibits insulin production, leading to diabetes. Diabetes treatment primarily uses...
Type I Diabetes II: Pathophysiology

