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Formation of Covalent DNA Adducts by Enzymatically Activated Carcinogens and Drugs In Vitro and Their Determination by 32P-postlabeling
Published on: March 20, 2018
Role of active oxygen species in DNA damage by pentachlorophenol metabolites
1Department of Environmental and Sanitary Engineering, Faculty of Engineering, Kyoto University, Japan.
Abstract:
Pentachlorophenol (PCP) has been shown to be carcinogenic for mice, although it does not seem to be mutagenic in bacterial test systems. In this study, the mechanism of DNA damage by PCP metabolites in the presence of metals was investigated with a DNA sequencing technique using 32P-labeled DNA fragments and with an electrochemical detector coupled to an HPLC. The metabolite tetrachlorohydroquinone (TCHQ) caused DNA damage in the presence of Cu(II) but not in the presence of either Mn(II) or Fe(III). TCHQ plus Cu(II) frequently induced piperidine-labile sites at thymine residues and guanine residues. The most preferred sites were the thymine residues of the 5'-GTC-3' sequence. TCHQ increased 8-oxo-7,8-dihydro-2'-deoxyguanosine in calf thymus DNA in the presence of Cu(II). Typical OH scavengers showed no inhibitory effects on TCHQ- plus Cu(II)-induced DNA damage. Bathocuproine and catalase inhibited DNA damage, suggesting that Cu(I) and H2O2 have important roles in the production of active species causing DNA damage. Tetrachloro-p-benzoquinone (TCBQ) alone did not induce DNA damage in the presence of Cu(II), but addition of NADH induced DNA cleavage even in the absence of NADH-FMN oxidoreductase. UV-visible and ESR spectroscopies have demonstrated that TCHQ is rapidly autoxidized into semiquinone even in the absence of metal ions, indicating that the semiquinone radical itself is not the main active species inducing DNA damage. These results suggest that the semiquinone radical produced by the autoxidation of TCHQ and/or the reduction of TCBQ by NADH reacts with dioxygen to form superoxide and subsequently H2O2, which is activated by transition metals to cause DNA damage.
Insights
Pentachlorophenol (PCP) metabolites cause DNA damage, particularly tetrachlorohydroquinone (TCHQ) with copper. This damage mechanism involves reactive oxygen species like hydrogen peroxide, not free radicals alone.
Area of Science:
- Environmental Toxicology
- Molecular Biology
- Biochemistry
Background:
- Pentachlorophenol (PCP) is a known carcinogen in mice, but its mutagenicity in bacteria is unclear.
- Understanding the mechanism of DNA damage induced by PCP metabolites is crucial for risk assessment.
Purpose of the Study:
- To investigate the mechanism of DNA damage induced by PCP metabolites, specifically tetrachlorohydroquinone (TCHQ) and tetrachloro-p-benzoquinone (TCBQ), in the presence of transition metals.
- To identify the reactive species responsible for DNA damage.
Main Methods:
- DNA sequencing using 32P-labeled DNA fragments.
- High-Performance Liquid Chromatography (HPLC) with an electrochemical detector.
- UV-visible and Electron Spin Resonance (ESR) spectroscopies.
- Assays using hydroxyl radical scavengers, bathocuproine, and catalase.
Main Results:
- Tetrachlorohydroquinone (TCHQ) induced DNA damage in the presence of Cu(II), primarily at thymine residues within 5'-GTC-3' sequences, and increased 8-oxo-7,8-dihydro-2'-deoxyguanosine levels.
- DNA damage was inhibited by bathocuproine and catalase, indicating roles for Cu(I) and hydrogen peroxide (H2O2).
- TCHQ autoxidizes to a semiquinone radical, but this radical is not the primary species causing DNA damage; instead, it leads to superoxide and H2O2 formation, which are activated by transition metals.
Conclusions:
- The DNA damaging activity of TCHQ in the presence of Cu(II) is mediated by reactive oxygen species, particularly H2O2, generated through a process involving the TCHQ semiquinone radical and transition metal catalysis.
- The findings elucidate a key mechanism of PCP-induced genotoxicity, highlighting the role of metal-dependent oxidative stress.
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