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.

Endocrinology
|March 1, 1992
PubMed

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 Expression01:58

Cell Specific Gene Expression

Multicellular organisms contain a variety of structurally and functionally distinct cell types, but the DNA in all the cells originated from the same parent cells. The differences in the cells can be attributed to the differential gene expression. Liver cells, whose functions include detoxification of blood, production of bile to metabolize fats, and synthesis of proteins essential for metabolism, must express a specific set of genes to perform their functions. Gene expression also varies with...
Insulin Secretory Vesicles01:05

Insulin Secretory Vesicles

Insulin secretory vesicles release insulin to stimulate blood glucose uptake and regulate carbohydrate metabolism. When the blood glucose levels increase, glucose enters the pancreatic β-islet cells through glucose transporters. Once inside, glucose is metabolized through glycolysis, the citric acid cycle, and the electron transport chain, producing ATP. This increase in ATP concentration closes ATP-sensitive potassium channels, leading to depolarization of the membrane and the opening of...
Glucose Homeostasis: Pancreatic Islets and Insulin Secretion01:27

Glucose Homeostasis: Pancreatic Islets and Insulin Secretion

The pancreatic islets comprising only 1%-2% of the volume are highly vascularized and innervated mini-organs. They contain five endocrine cell types, including β cells that secrete insulin, which is synthesized as a single polypeptide chain, preproinsulin, processed to proinsulin, and finally to insulin and C-peptide. This process is complex and regulated, involving the Golgi complex, the endoplasmic reticulum, and the secretory granules of the β cell.
Insulin and C-peptide are co-secreted in...
Insulin: Biosynthesis, Chemistry, and Preparation01:25

Insulin: Biosynthesis, Chemistry, and Preparation

The endoplasmic reticulum (ER) of pancreatic β-cells synthesizes preproinsulin, which consists of a signal peptide, A and B chains, and a C-peptide. Preproinsulin is then cleaved and folded into proinsulin, which translocates to the Golgi apparatus for sorting and packaging into secretory granules. In these granules, enzymatic clipping generates insulin and C-peptide.
Damage or functional impairment of β-cells inhibits insulin production, leading to diabetes. Diabetes treatment primarily uses...
Type I Diabetes II: Pathophysiology01:26

Type I Diabetes II: Pathophysiology

Type 1 diabetes mellitus arises from an immune-mediated destruction of pancreatic β-cells, resulting in an absolute deficiency of insulin. This process develops in genetically susceptible individuals when autoimmunity, environmental exposures, and immunologic dysregulation converge to trigger a targeted attack on the insulin-producing cells of the pancreas. The β-cells are located within the islets of Langerhans and are essential for regulating blood glucose by facilitating cellular uptake of...