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Updated: Jun 20, 2026

Quantification of three DNA Lesions by Mass Spectrometry and Assessment of Their Levels in Tissues of Mice Exposed to Ambient Fine Particulate Matter
Published on: May 29, 2019
DNA double-strand breaks by asbestos, silica, and titanium dioxide: possible biomarker of carcinogenic potential?
Zola Msiska1, Maricica Pacurari, Anurag Mishra
1Pathology and Physiology Research Branch, Health Effects Laboratory Branch, National Institute for Occupational Safety and Health, Morgantown, West Virginia, USA.
Abstract:
DNA double-strand breaks (DSBs) can result in cell death or genetic alterations when cells are subjected to radiation, exposure to toxins, or other environmental stresses. A complex DNA-damage-response pathway is activated to repair the damage, and the inability to repair these breaks can lead to carcinogenesis. One of the earliest responses to DNA DSBs is the phosphorylation of a histone, H2AX, at serine 139 (gamma-H2AX), which can be detected by a fluorescent antibody. A study was undertaken to compare the induction of DNA DSBs in normal (small airway epithelial) cells and cancer cells (A549) after exposure to asbestos (crocidolite), a proven carcinogen, silica, a suspected carcinogen, and titanium dioxide (TiO(2)), an inert particle recently reported to be carcinogenic in animals. The results indicate that crocidolite induced greater DNA DSBs than silica and TiO(2), regardless of cell type. DNA DSBs caused by crocidolite were higher in normal cells than in cancer cells. Silica and TiO(2) induced higher DNA DSBs in cancer cells than in normal cells. The production of reactive oxygen species was found to be highest in cells exposed to crocidolite, followed, in potency, by silica and TiO(2). The generation of reactive oxygen species was higher in normal cells than in cancer cells. Cell viability assay indicated that crocidolite caused the greatest cytotoxicity in both cell types. Apoptosis, measured by caspase 3/7 and poly (ADP-Ribose) polymerase activation, was highest in crocidolite-exposed cells, followed by TiO(2) and silica. The results of this study indicate that crocidolite has a greater carcinogenic potential than silica and TiO(2), judged by its ability to cause sustained genomic instability in normal lung cells.
Insights
Asbestos (crocidolite) causes more DNA damage and cell death than silica or titanium dioxide in lung cells. Crocidolite poses a greater carcinogenic risk due to sustained genomic instability in normal cells.
Area of Science:
- Environmental Toxicology
- Cell Biology
- Carcinogenesis
Background:
- DNA double-strand breaks (DSBs) are critical lesions leading to cell death or genetic alterations.
- Early response to DSBs involves histone H2AX phosphorylation (gamma-H2AX).
- Failure to repair DSBs can result in carcinogenesis.
Purpose of the Study:
- Compare DNA DSB induction by crocidolite, silica, and titanium dioxide (TiO(2)) in normal and cancer lung cells.
- Assess reactive oxygen species (ROS) production, cytotoxicity, and apoptosis.
- Evaluate the carcinogenic potential of these particles.
Main Methods:
- Exposed normal (small airway epithelial) and cancer (A549) cells to crocidolite, silica, and TiO(2).
- Measured DNA DSBs via gamma-H2AX.
- Assessed ROS production, cell viability, and apoptosis markers (caspase 3/7, PARP activation).
Main Results:
- Crocidolite induced significantly higher DNA DSBs than silica and TiO(2) in both cell types.
- DNA DSBs were higher in normal cells exposed to crocidolite, but higher in cancer cells exposed to silica and TiO(2).
- Crocidolite generated the most ROS and caused the highest cytotoxicity and apoptosis.
Conclusions:
- Crocidolite exhibits greater carcinogenic potential than silica and TiO(2).
- Crocidolite induces sustained genomic instability, particularly in normal lung cells.
- Differential responses to particle exposure highlight varying risks in normal versus cancer cells.
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