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Oxidative DNA damage and apoptosis induced by benzene metabolites
1Department of Public Health, Graduate School of Medicine, Kyoto University, Japan.
Abstract:
Benzene is a widely recognized human carcinogen. The mechanism of DNA damage induced by major benzene metabolites 1,4-benzoquinone (1,4-BQ) and hydroquinone (1,4-HQ) was investigated in relation to apoptosis and carcinogenesis. Pulsed-field gel electrophoresis showed that cellular DNA strand breakage was induced by benzene metabolites. Internucleosomal DNA fragmentation and morphological changes of apoptotic cells were observed at higher concentrations of benzene metabolites. Flow cytometry showed an increase of peroxides in cultured cells treated with benzene metabolites. 1,4-BQ induced these changes at a much lower concentration than 1,4-HQ. Damage to DNA fragments obtained from the c-Ha-ras-1 proto-oncogene was investigated by a DNA sequencing technique. 1,4-BQ + NADH and 1,4-HQ induced piperidine-labile sites frequently at thymine residues in the presence of Cu(II). Catalase and bathocuproine inhibited DNA damage, suggesting that H2O2 reacts with Cu(I) to produce active species causing DNA damage. Electron spin resonance studies showed that semiquinone radical was produced by NADH-mediated reduction of 1,4-BQ and autoxidation of 1,4-HQ, suggesting that benzene metabolites produce O2- and H2O2 via the formation of semiquinone radical. These results suggest that these benzene metabolites cause DNA damage through H2O2 generation in cells, preceding internucleosomal DNA fragmentation leading to apoptosis. The fates of the cells to apoptosis or mutation might be dependent on the intensity of DNA damage and the ability to repair DNA.
Insights
Benzene metabolites like 1,4-benzoquinone (1,4-BQ) and hydroquinone (1,4-HQ) cause DNA damage and cell death (apoptosis) by generating hydrogen peroxide (H2O2). This damage may lead to mutations and cancer.
Area of Science:
- Environmental Toxicology
- Molecular Biology
- Carcinogenesis
Background:
- Benzene is a known human carcinogen.
- Understanding the DNA damage mechanisms of benzene metabolites is crucial for assessing cancer risk.
Purpose of the Study:
- To investigate the DNA damage mechanisms induced by 1,4-benzoquinone (1,4-BQ) and hydroquinone (1,4-HQ), major benzene metabolites.
- To correlate DNA damage with apoptosis and carcinogenesis.
Main Methods:
- Pulsed-field gel electrophoresis to detect DNA strand breaks.
- Flow cytometry to measure peroxide levels.
- DNA sequencing to identify damage sites on the c-Ha-ras-1 proto-oncogene.
- Electron spin resonance (ESR) to detect radical formation.
Main Results:
- Benzene metabolites induced DNA strand breakage and internucleosomal fragmentation (apoptosis).
- 1,4-BQ was more potent than 1,4-HQ in inducing damage and apoptosis.
- DNA damage, particularly at thymine residues, was mediated by reactive oxygen species (ROS) like H2O2, involving copper ions.
- Semiquinone radicals were formed, leading to O2- and H2O2 production.
Conclusions:
- Benzene metabolites cause DNA damage primarily through H2O2 generation, preceding apoptosis.
- The balance between DNA damage intensity and repair capacity determines cellular fate (apoptosis or mutation).
- These findings elucidate key mechanisms in benzene-induced carcinogenesis.
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