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Updated: Dec 19, 2025

In situ Quantification of Pancreatic Beta-cell Mass in Mice
Published on: June 7, 2010
Ternary complex factor regulates pancreatic islet size and blood glucose homeostasis in transgenic mice
Andrea Lesch1, Tobias M Backes1, Daniel S Langfermann1
1Department of Medical Biochemistry and Molecular Biology, Saarland University, D-66421 Homburg, Germany.
Abstract:
A hallmark of diabetes mellitus is the inability of pancreatic β-cells to secrete sufficient amounts of insulin for maintaining normoglycemia. The formation of smaller islets may underlie the development of a diabetic phenotype, as a decreased β-cell mass will produce an insufficient amount of insulin. For a pharmacological intervention it is crucial to identify the proteins determining β-cell mass. Here, we identified the ternary complex factor (TCF) Elk-1 as a regulator of the size of pancreatic islets. Elk-1 mediates, together with a dimer of the serum-response factor (SRF), serum response element-regulated gene transcription. Elk-1 is activated in glucose-treated pancreatic β-cells but the biological functions of this protein in β-cells are so far unknown. Elk-1 and homologous TCF proteins are expressed in islets and insulinoma cells. Gene targeting experiments revealed that the TCF proteins show redundant activities. To solve the problem of functional redundancy of these homologous proteins, we generated conditional transgenic mice expressing a dominant-negative mutant of Elk-1 in pancreatic β-cells. The mutant competes with the wild-type TCFs for DNA and SRF-binding. Expression of the Elk-1 mutant in pancreatic β-cells resulted in the generation of significantly smaller islets and increased caspase-3 activity, indicating that apoptosis was responsible for the reduction of the pancreatic islet size. Glucose tolerance tests revealed that transgenic mice expressing the dominant-negative mutant of Elk-1 in pancreatic β-cells displayed impaired glucose tolerance. Thus, we show here for the first time that TCF controls important functions of pancreatic β-cells in vivo. Elk-1 may be considered as a new therapeutic target for the treatment of diabetes.
Insights
Ternary complex factor (TCF) Elk-1 regulates pancreatic islet size. Inhibiting Elk-1 in beta cells reduced islet size and impaired glucose tolerance, suggesting Elk-1 as a diabetes therapeutic target.
Area of Science:
- Endocrinology
- Molecular Biology
- Diabetes Research
Background:
- Diabetes mellitus is characterized by insufficient insulin secretion from pancreatic beta cells.
- Decreased beta cell mass, potentially due to smaller islets, contributes to insulin deficiency.
- Identifying proteins that regulate beta cell mass is crucial for pharmacological interventions.
Purpose of the Study:
- To identify proteins regulating pancreatic islet size.
- To investigate the role of ternary complex factor (TCF) Elk-1 in pancreatic beta cells.
- To explore Elk-1 as a potential therapeutic target for diabetes.
Main Methods:
- Identified Elk-1 as a regulator of islet size.
- Utilized conditional transgenic mice expressing a dominant-negative Elk-1 mutant in beta cells.
- Assessed islet size, apoptosis (caspase-3 activity), and glucose tolerance.
Main Results:
- Expression of dominant-negative Elk-1 led to significantly smaller islets.
- Increased caspase-3 activity indicated apoptosis was responsible for reduced islet size.
- Transgenic mice exhibited impaired glucose tolerance.
Conclusions:
- TCF Elk-1 controls critical in vivo functions of pancreatic beta cells.
- Elk-1 plays a significant role in regulating pancreatic islet size.
- Elk-1 represents a novel therapeutic target for diabetes treatment.
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