Molecular mechanisms of cancer prevention by selenium compounds

J Fleming1, A Ghose, P R Harrison

  • 1Beatson Institute for Cancer Research, CRC Beatson Laboratories, Bearsden, Glasgow G61 1BD, Scotland, UK.

Nutrition and Cancer
|January 22, 2002
PubMed

Insights

Natural selenium metabolite selenodiglutathione (SDG) selectively induces apoptosis in oral carcinoma cells via the Fas pathway. This mechanism differs from synthetic selenium compounds, offering targeted chemopreventive strategies.

Area of Science:

  • Oncology
  • Molecular Biology
  • Chemoprevention

Background:

  • Selenium compounds show chemopreventive properties by inhibiting cell growth and inducing apoptosis.
  • Oral carcinoma cells exhibit differential sensitivity to selenium metabolites compared to normal cells.

Purpose of the Study:

  • To investigate the mechanism of apoptosis induction by a natural selenium metabolite, selenodiglutathione (SDG), in oral carcinoma.
  • To compare the selectivity and signaling pathways of SDG with a synthetic selenium compound, p-XSC.

Main Methods:

  • Primary cultures of oral carcinoma biopsies and normal oral mucosa were treated with SDG.
  • Analysis of apoptosis induction, Fas ligand expression, and stress kinase pathways (JNK) was performed.
  • Comparison with the effects of 1,4-phenylenebis(methylene)selenocyanate (p-XSC) and the role of antioxidants.

Main Results:

  • SDG selectively induced apoptosis in oral carcinoma cells, associated with Fas ligand induction and JNK pathway activation.
  • Heme oxygenase was also induced by SDG, indicating a stress response.
  • The synthetic compound p-XSC induced similar pathways but lacked tumor selectivity and showed different dependencies on JNK and hydroxyl radical scavenging.

Conclusions:

  • SDG's selective apoptosis induction in oral carcinomas via the Fas pathway offers a potential targeted chemoprevention strategy.
  • Differences in redox modulation mechanisms between SDG and p-XSC explain their distinct in vivo and in vitro effects.
  • Targeting the Fas pathway and stress responses in oral cancer presents a promising therapeutic avenue.

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