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Induction of oxyradicals by arsenic: implication for mechanism of genotoxicity
1Center for Radiological Research, College of Physicians and Surgeons, Columbia University, New York, NY 10032, USA.
Abstract:
Although arsenic is a well-established human carcinogen, the mechanisms by which it induces cancer remain poorly understood. We previously showed arsenite to be a potent mutagen in human-hamster hybrid (A(L)) cells, and that it induces predominantly multilocus deletions. We show here by confocal scanning microscopy with the fluorescent probe 5',6'-chloromethyl-2',7'-dichlorodihydrofluorescein diacetate that arsenite induces, within 5 min after treatment, a dose-dependent increase of up to 3-fold in intracellular oxyradical production. Concurrent treatment of cells with arsenite and the radical scavenger DMSO reduced the fluorescent intensity to control levels. ESR spectroscopy with 4-hydroxy-2,2,6,6-tetramethyl-1-hydroxypiperidine (TEMPOL-H) as a probe in conjunction with superoxide dismutase and catalase to quench superoxide anions and hydrogen peroxide, respectively, indicates that arsenite increases the levels of superoxide-driven hydroxyl radicals in these cells. Furthermore, reducing the intracellular levels of nonprotein sulfhydryls (mainly glutathione) in A(L) cells with buthionine S-R-sulfoximine increases the mutagenic potential of arsenite by more than 5-fold. The data are consistent with our previous results with the radical scavenger DMSO, which reduced the mutagenicity of arsenic in these cells, and provide convincing evidence that reactive oxygen species, particularly hydroxyl radicals, play an important causal role in the genotoxicity of arsenical compounds in mammalian cells.
Insights
Arsenic exposure increases harmful oxyradicals in cells, leading to DNA damage and mutations. Reducing cellular antioxidants amplifies arsenic
Area of Science:
- Toxicology
- Molecular Biology
- Genetics
Background:
- Arsenic is a known human carcinogen, but its cancer-inducing mechanisms are not fully understood.
- Previous studies identified arsenite as a potent mutagen causing multilocus deletions in human-hamster hybrid (A(L)) cells.
Purpose of the Study:
- To investigate the role of reactive oxygen species (ROS) in arsenic-induced genotoxicity.
- To elucidate the mechanisms by which arsenite causes DNA mutations in mammalian cells.
Main Methods:
- Confocal scanning microscopy using a fluorescent probe to measure intracellular oxyradical production.
- Electron spin resonance (ESR) spectroscopy with TEMPOL-H, superoxide dismutase, and catalase to identify specific radicals.
- Treatment with buthionine S-R-sulfoximine to deplete nonprotein sulfhydryls (glutathione).
Main Results:
- Arsenite treatment rapidly increased intracellular oxyradical production in a dose-dependent manner.
- Radical scavengers (DMSO) and antioxidants (superoxide dismutase, catalase) reduced arsenite-induced ROS levels and mutagenicity.
- Depletion of glutathione significantly enhanced arsenite's mutagenic potential.
- ESR spectroscopy confirmed increased levels of superoxide-driven hydroxyl radicals.
Conclusions:
- Reactive oxygen species, particularly hydroxyl radicals, play a critical role in arsenite-induced genotoxicity.
- The findings provide strong evidence for oxidative stress mediating arsenic's mutagenic effects in mammalian cells.