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Updated: Apr 12, 2026

Implantation and Monitoring by PET/CT of an Orthotopic Model of Human Pleural Mesothelioma in Athymic Mice
Published on: December 21, 2019
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.
Abstract:
Malignant mesothelioma (MM) is a relatively rare cancer that occurs almost exclusively following respiratory exposure to asbestos in humans. Its pathogenesis is closely associated with iron overload and oxidative stress in mesothelial cells. On fiber exposure, mesothelial cells accumulate fibers simultaneously with iron, which either performs physical scissor function or catalyzes free radical generation, leading to oxidative DNA damage such as strand breaks and base modifications, followed by activation of intracellular signaling pathways. Chrysotile, per se without iron, causes massive hemolysis and further adsorbs hemoglobin. Exposure to indigestible foreign materials also induces chronic inflammation, involving consistent generation of free radicals and subsequent activation of NALP3 inflammasomes in macrophages. All of these contribute to mesothelial carcinogenesis. Genomic alterations most frequently involve homozygous deletion of INK4A/4B, and other pathways such as Hippo and TGF-β pathways are also affected in MM. Recently, analyses of familial MM sorted out BAP1 as a novel responsible tumor suppressor gene, whose function is not fully elucidated. Five-year survival of mesothelioma is still ~8%, and this cancer is increasing worldwide. Connective tissue growth factor, a secretory protein creating a vicious cycle mediated by β-catenin, has been recognized as a hopeful target for therapy, especially in sarcomatoid subtype. Recent research outcomes related to microRNAs and cancer stem cells also offer additional novel targets for the treatment of MM. Iron reduction as chemoprevention of mesothelioma is helpful at least in an animal preclinical study. Integrated approaches to fiber-induced oxidative stress would be necessary to overcome this currently fatal disease.
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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