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Published on: March 20, 2018
2-Nitroanisole-induced oxidative DNA damage in Salmonella typhimurium and in rat urinary bladder cells
Kunio Wada1, Yoshitaka Katoh1, Aya Ohnuma-Koyama1
1Toxicology Division, The Institute of Environmental Toxicology, 4321, Uchimoriya-machi, Joso-shi, Ibaraki 303-0043, Japan.
Abstract:
2-Nitroanisole (2-NA) is used in the manufacturing of azo dyes and causes cancer, mainly in the urinary bladder. Previous in vivo genotoxic data seems to be insufficient to explain the mechanism through which 2-NA induces carcinogenesis, and several bladder carcinogens were reported to induce oxidative DNA damage. Thus, we examined the potential induction of oxidative DNA damage by 2-NA using bacterial strain YG3008, a mutMST-deficient derivative of strain TA100. Consequently, strain YG3008, when compared with strain TA100, was found to be more sensitive to 2-NA, indicating oxidative DNA damage in bacterial cells. For further investigation, we performed the comet assay using the urinary bladder and liver of rats, with and without human 8-oxoguanine DNA-glycosylase 1 (hOGG1), to confirm the potential of 2-NA for inducing oxidative DNA damage. Simultaneously, we conducted a micronucleus test using bone marrow from rats to assess the genotoxicity of 2-NA in vivo. 2-NA was administered orally to male Fischer 344 rats for 3 consecutive days. The rats were divided into 6 treatment groups: 3 groups treated with 2-NA at doses of 125, 250, and 500mg/kg; a group treated with the combination of 2-NA and glutathione-SH (GSH); a negative control group; and a positive control group. The comet assay without hOGG1 detected no DNA damage in the liver or urinary bladder, and the micronucleus test did not show clastogenic effects in bone marrow cells. However, the comet assay with hOGG1 was positive in the urinary bladder samples, indicating the induction of oxidative DNA damage in the urinary bladder for the group treated with 2-NA at 500mg/kg. Moreover, an antioxidant of GSH significantly reduced oxidative DNA damage caused by 2-NA. These results indicate that oxidative DNA damage is a possible mode of action for carcinogenesis in the urinary bladder of rats treated with 2-NA.
Insights
2-Nitroanisole (2-NA) causes bladder cancer. This study found 2-NA induces oxidative DNA damage in rat bladders, a key mechanism in its carcinogenicity. Glutathione significantly reduced this damage.
Area of Science:
- Toxicology
- Carcinogenesis
- Genotoxicity
Background:
- 2-Nitroanisole (2-NA) is an azo dye precursor linked to bladder cancer.
- The precise mechanism of 2-NA-induced carcinogenesis, particularly oxidative DNA damage, requires further elucidation.
- Several known bladder carcinogens induce oxidative DNA damage.
Purpose of the Study:
- To investigate the potential of 2-NA to induce oxidative DNA damage.
- To explore the role of oxidative DNA damage in 2-NA's carcinogenic mechanism in the urinary bladder.
- To assess the protective effect of glutathione against 2-NA-induced damage.
Main Methods:
- Bacterial mutagenicity assays using strain YG3008 (mutMST-deficient).
- Comet assays with and without human 8-oxoguanine DNA-glycosylase 1 (hOGG1) on rat liver and urinary bladder DNA.
- In vivo micronucleus tests on rat bone marrow cells.
- Oral administration of 2-NA to rats at varying doses, with and without glutathione-SH (GSH).
Main Results:
- Bacterial strain YG3008 showed increased sensitivity to 2-NA, suggesting oxidative DNA damage.
- Comet assays without hOGG1 detected no DNA damage in rat liver or bladder.
- Comet assays with hOGG1 revealed significant oxidative DNA damage in rat urinary bladders at the highest 2-NA dose (500 mg/kg).
- Micronucleus tests did not indicate clastogenic effects.
- Glutathione administration significantly reduced 2-NA-induced oxidative DNA damage.
Conclusions:
- Oxidative DNA damage is a likely mechanism underlying 2-NA-induced urinary bladder carcinogenesis in rats.
- The comet assay with hOGG1 is effective in detecting 2-NA-induced oxidative DNA damage.
- Glutathione exhibits a protective effect against 2-NA-induced oxidative stress.
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