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Updated: Jan 30, 2026

A High-content In Vitro Pancreatic Islet β-cell Replication Discovery Platform
Published on: July 16, 2016
Modelling pancreatic β-cell inflammation in zebrafish identifies the natural product wedelolactone for human islet
Luis Fernando Delgadillo-Silva1,2, Anastasia Tsakmaki3, Nadeem Akhtar1
1Centre for Regenerative Therapies TU Dresden, Dresden 01307, Germany.
Abstract:
Islet inflammation and cytokine production are implicated in pancreatic β-cell dysfunction and diabetes pathogenesis. However, we lack therapeutics to protect the insulin-producing β-cells from inflammatory damage. Closing this clinical gap requires the establishment of new disease models of islet inflammation to facilitate screening efforts aimed at identifying new protective agents. Here, we have developed a genetic model of Interleukin-1β (Il-1β)-driven islet inflammation in zebrafish, a vertebrate that allows for non-invasive imaging of β-cells and in vivo drug discovery. Live imaging of immune cells and β-cells in our model revealed dynamic migration, increased visitation and prolonged macrophage retention in the islet, together with robust activation of NF-κB signalling in β-cells. We find that Il-1β-mediated inflammation does not cause β-cell destruction but, rather, it impairs β-cell function and identity. In vivo, β-cells exhibit impaired glucose-stimulated calcium influx and reduced expression of genes involved in function and maturity. These defects are accompanied by α-cell expansion, glucose intolerance and hyperglycemia following a glucose challenge. Notably, we show that a medicinal plant derivative (wedelolactone) is capable of reducing the immune-cell infiltration while also ameliorating the hyperglycemic phenotype of our model. Importantly, these anti-diabetic properties in zebrafish are predictive of wedelolactone's efficacy in protecting rodent and human islets from cytokine-induced apoptosis. In summary, this new zebrafish model of diabetes opens a window to study the interactions between immune and β-cells in vivo, while also allowing the identification of therapeutic agents for protecting β-cells from inflammation.
Insights
A new zebrafish model reveals Interleukin-1β (Il-1β) causes islet inflammation, impairing beta-cell function without destruction. This model identified wedelolactone as a potential therapeutic for diabetes by protecting beta-cells from inflammatory damage.
Area of Science:
- Endocrinology
- Immunology
- Genetics
Background:
- Islet inflammation and cytokines contribute to pancreatic beta-cell dysfunction and diabetes.
- Current therapeutics to protect beta-cells from inflammatory damage are lacking.
- New disease models are needed for screening protective agents against islet inflammation.
Purpose of the Study:
- To develop a genetic zebrafish model of Interleukin-1β (Il-1β)-driven islet inflammation for in vivo drug discovery.
- To investigate the effects of Il-1β-mediated inflammation on beta-cell function and identity.
- To identify potential therapeutic agents for protecting beta-cells from inflammatory damage.
Main Methods:
- Developed a genetic zebrafish model of Il-1β-driven islet inflammation.
- Utilized live imaging to observe immune cell and beta-cell interactions within islets.
- Assessed beta-cell function, gene expression, and glucose homeostasis.
- Screened the medicinal plant derivative wedelolactone for therapeutic effects.
Main Results:
- Il-1β-driven inflammation led to immune cell infiltration and NF-κB activation in beta-cells.
- Inflammation impaired beta-cell function (calcium influx, gene expression) and identity, without causing cell death.
- Zebrafish model exhibited glucose intolerance and hyperglycemia.
- Wedelolactone reduced immune cell infiltration and ameliorated hyperglycemia in zebrafish.
- Wedelolactone demonstrated efficacy in protecting rodent and human islets from cytokine-induced apoptosis.
Conclusions:
- The developed zebrafish model allows for in vivo study of immune-beta cell interactions in diabetes.
- Il-1β-mediated inflammation impairs beta-cell function and identity, contributing to hyperglycemia.
- Wedelolactone shows therapeutic potential for protecting beta-cells and treating diabetes.
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