Malignant mesothelioma as an oxidative stress-induced cancer: An update

Shan Hwu Chew1, Shinya Toyokuni1

  • 1Department of Pathology and Biological Responses, Nagoya University Graduate School of Medicine, 65 Tsurumai-cho, Showa-ku, Nagoya 466-8550, Japan.

Insights

Malignant mesothelioma (MM) is a rare cancer linked to asbestos exposure and iron overload. Oxidative stress and inflammation drive its development, with new therapeutic targets emerging for this fatal disease.

Area of Science:

  • Oncology
  • Environmental Health
  • Cell Biology

Background:

  • Malignant mesothelioma (MM) is a rare cancer primarily caused by asbestos exposure.
  • Its development involves iron overload and oxidative stress in mesothelial cells.
  • Chronic inflammation and specific genetic alterations (e.g., INK4A/4B deletion, BAP1 mutations) are key factors.

Purpose of the Study:

  • To review the pathogenesis of malignant mesothelioma.
  • To highlight the roles of asbestos fibers, iron, and oxidative stress.
  • To discuss current and emerging therapeutic strategies.

Main Methods:

  • Literature review of studies on malignant mesothelioma pathogenesis.
  • Analysis of cellular and molecular mechanisms involved in asbestos-induced carcinogenesis.
  • Examination of genetic alterations and signaling pathways implicated in MM.

Main Results:

  • Asbestos fibers accumulate with iron in mesothelial cells, causing DNA damage and oxidative stress.
  • Chrysotile asbestos can induce hemolysis and adsorb hemoglobin, exacerbating oxidative stress.
  • Chronic inflammation, NALP3 inflammasome activation, and genomic instability contribute to MM development.
  • INK4A/4B deletion and BAP1 mutations are frequent genomic alterations.
  • Connective tissue growth factor, microRNAs, and cancer stem cells represent potential therapeutic targets.

Conclusions:

  • Malignant mesothelioma pathogenesis is multifactorial, involving fiber-carcinogen interactions, iron metabolism, oxidative stress, and inflammation.
  • Targeting pathways like connective tissue growth factor and exploring iron reduction may offer new therapeutic avenues.
  • Integrated approaches addressing fiber-induced oxidative stress are crucial for overcoming this fatal cancer.

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