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.

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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