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Updated: Jul 11, 2026

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Published on: May 2, 2025
Genistein protects pancreatic beta cells against cytokine-mediated toxicity
Eun-Kyung Kim1, Kang-Beom Kwon, Mi-Young Song
1Department of Biochemistry, Medical School and Institute for Medical Sciences, Chonbuk National University, Jeonju, Jeonbuk, 561-756, Republic of Korea.
Abstract:
In the past few decades, the use of genistein as an anti-inflammatory agent has gained much attention. Our current study focuses on the preventive effects of genistein on cytokine-induced pancreatic beta-cell damage. Treatment of RINm5F (RIN) rat insulinoma cells with interleukin (IL)-1beta and interferon (IFN)-gamma induced cell damage, which was correlated with nitric oxide (NO) production. Genistein completely prevented cytokine-mediated cytotoxicity and NO production, a finding that correlated well with reduced levels of the inducible form of NO synthase (iNOS) mRNA and protein. The molecular mechanism of genistein inhibition of iNOS gene expression appeared to involve the inhibition of NFkappaB activation. The cytokine induced increases in NFkappaB binding activity, nuclear p50 and p65 subunit levels, and IkappaBalpha degradation in cytosol compared to unstimulated cells; genistein abolished all of these parameters. The cytoprotective effects of genistein are also mediated through the suppression of ERK-1/2 and Janus kinase (JAK)/signal transducer and activator of transcription (STAT) pathways. In a second set of experiments, rat islets were used. The findings on beta-cell protective effects of genistein were essentially the same as for the RIN cell data, namely genistein prevented cytokine-induced NO production, iNOS expression, ERK-1/2 activation, JAK/STAT activation, and impairment of glucose-stimulated insulin secretion. Collectively, these results suggest that genistein might be used to preserve functional beta-cell mass.
Insights
Genistein protects pancreatic beta cells from inflammatory damage by inhibiting nitric oxide production and key signaling pathways. This suggests genistein
Area of Science:
- Endocrinology
- Molecular Biology
- Immunology
Background:
- Genistein is recognized for its anti-inflammatory properties.
- Cytokine-induced damage to pancreatic beta cells is a significant concern.
Purpose of the Study:
- To investigate the preventive effects of genistein on cytokine-induced pancreatic beta-cell damage.
- To elucidate the molecular mechanisms underlying genistein's protective actions.
Main Methods:
- Utilized RINm5F rat insulinoma cells and isolated rat islets.
- Induced beta-cell damage using interleukin-1beta and interferon-gamma.
- Assessed nitric oxide (NO) production, inducible NO synthase (iNOS) expression, NF-kappaB activation, ERK-1/2, and JAK/STAT pathways.
Main Results:
- Genistein completely prevented cytokine-mediated cytotoxicity and NO production.
- Genistein inhibited iNOS mRNA and protein expression.
- Genistein suppressed NF-kappaB activation, ERK-1/2, and JAK/STAT signaling pathways.
- Genistein preserved glucose-stimulated insulin secretion in rat islets.
Conclusions:
- Genistein exhibits significant cytoprotective effects on pancreatic beta cells.
- Genistein's mechanisms involve inhibiting inflammatory signaling pathways.
- Genistein holds potential for preserving functional beta-cell mass.
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