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Updated: Oct 22, 2025

Differentiated Mouse Adipocytes in Primary Culture: A Model of Insulin Resistance
Published on: February 17, 2023
An inhibitor-mediated beta-cell dedifferentiation model reveals distinct roles for FoxO1 in glucagon repression and
Tamara Casteels1, Yufeng Zhang2, Thomas Frogne3
1CeMM Research Center for Molecular Medicine of the Austrian Academy of Sciences, Lazarettgasse 14, A-1090, Vienna, Austria.
Objective:
The loss of forkhead box protein O1 (FoxO1) signaling in response to metabolic stress contributes to the etiology of type II diabetes, causing the dedifferentiation of pancreatic beta cells to a cell type reminiscent of endocrine progenitors. Lack of methods to easily model this process in vitro, however, have hindered progress into the identification of key downstream targets and potential inhibitors. We therefore aimed to establish such an in vitro cellular dedifferentiation model and apply it to identify novel agents involved in the maintenance of beta-cell identity.
Methods:
The murine beta-cell line, Min6, was used for primary experiments and high-content screening. Screens encompassed a library of small-molecule drugs representing the chemical and target space of all FDA-approved small molecules with an automated immunofluorescence readout. Validation experiments were performed in a murine alpha-cell line as well as in primary murine and human diabetic islets. Developmental effects were studied in zebrafish and C. elegans models, while diabetic db/db mouse models were used to elucidate global glucose metabolism outcomes.
Results:
We show that short-term pharmacological FoxO1 inhibition can model beta-cell dedifferentiation by downregulating beta-cell-specific transcription factors, resulting in the aberrant expression of progenitor genes and the alpha-cell marker glucagon. From a high-content screen, we identified loperamide as a small molecule that can prevent FoxO inhibitor-induced glucagon expression and further stimulate insulin protein processing and secretion by altering calcium levels, intracellular pH, and FoxO1 localization.
Conclusions:
Our study provides novel models, molecular targets, and drug candidates for studying and preventing beta-cell dedifferentiation.
Insights
Loss of forkhead box protein O1 (FoxO1) signaling contributes to type II diabetes by causing pancreatic beta cell dedifferentiation. Researchers developed an in vitro model and identified loperamide as a potential agent to maintain beta cell identity.
Area of Science:
- Endocrinology
- Molecular Biology
- Drug Discovery
Background:
- Loss of forkhead box protein O1 (FoxO1) signaling in pancreatic beta cells is linked to type II diabetes.
- This signaling loss causes beta cell dedifferentiation into progenitor-like cells.
- Lack of in vitro models has hindered research into downstream targets and inhibitors.
Purpose of the Study:
- To establish an in vitro model for beta cell dedifferentiation.
- To identify novel agents that maintain beta cell identity.
Main Methods:
- Utilized the murine beta-cell line Min6 for high-content screening of FDA-approved small molecules.
- Validated findings in murine alpha-cell lines, primary human diabetic islets, zebrafish, C. elegans, and db/db mouse models.
- Employed automated immunofluorescence for screening and assessed effects on gene expression, protein processing, secretion, and glucose metabolism.
Main Results:
- Short-term pharmacological FoxO1 inhibition successfully modeled beta cell dedifferentiation, downregulating key transcription factors and upregulating progenitor genes and glucagon.
- High-content screening identified loperamide as a compound that prevents FoxO inhibitor-induced glucagon expression.
- Loperamide was shown to stimulate insulin processing and secretion by modulating calcium levels, intracellular pH, and FoxO1 localization.
Conclusions:
- Developed novel in vitro models for studying beta cell dedifferentiation.
- Identified key molecular targets and potential drug candidates, including loperamide, for therapeutic intervention.
- Provides a foundation for further research into preventing and treating beta cell dysfunction in diabetes.
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