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Published on: August 1, 2015
In vitro DNA and dGMP adducts formation caused by ochratoxin A
S Obrecht-Pflumio1, G Dirheimer
1Laboratoire de Biologie végétale appliquée, IUT Louis Pasteur, allée d'Athènes, F-67300, Schiltigheim, France.
Abstract:
Ochratoxin A (OTA), a nephrotoxic and nephrocarcinogenic mycotoxin, leads to the formation of DNA adducts after administration to animals. This could be due to an epigenetic effect. In vitro assays can exclude an indirect effect, where the xenobiotic can generate, in vivo, endogenous reactive compounds which give adducts on DNA. Microsomes prepared from mice or rabbit kidney and liver, used as metabolic activators, were incubated in the presence of commercial salmon testes DNA and OTA, with NADPH or arachidonic acid used as cofactors. Upto 126 DNA adducts for 10(9) nucleotides were detected using the 32P postlabeling method after incubation with the mouse kidney system. Similar results were obtained with rabbit kidney microsomes. Using liver microsomes, the number of DNA adducts detected was much lower. When NADPH was used as a cosubstrate (to explore the cytochrome P450 metabolic pathways), with mice kidney microsomes, the adduct level was only 44% of the one obtained with arachidonic acid. These results lend support to the hypothesis of the preferential activation of OTA by the peroxidase activity of prostaglandin synthases and/or lipoxygenases to direct genotoxic metabolites, and are in agreement with the previously obtained results after in vivo treatment of mice. In order to identify the nucleotides of DNA modified by the OTA metabolites, dAMP, dGMP, dTMP and dCMP were used as substrates under the same conditions as with DNA. The adducts were found only on dGMP. The total adduct level was of 344 adducts per 10(9) nucleotides with the appearance of three major adducts in the presence of arachidonic acid. With NADPH, 271 adducts were obtained per 10(9) nucleotides, with again three major adducts, but only two of them were similar to two adducts obtained in the presence of arachidonic acid. Desferal (desferrioxamine B methanesulphonate), at a 50 microM concentration, did not reduce the adduct level. Adducts were also obtained when polydG, polydC and dG-p-dG were used as alternative substrates, whereas no adducts were obtained with polydA, polydT and polydC. The major adduct obtained after incubation of DNA with OTA, comigrated with the major adduct obtained with dGMP, in two chromatographic solvents. These results show that OTA is metabolized to genotoxic metabolite(s) which interact with the guanine residues of DNA.
Insights
Ochratoxin A (OTA) forms DNA adducts, particularly on guanine residues, through metabolic activation. This study demonstrates OTA
Area of Science:
- Toxicology
- Molecular Biology
- Biochemistry
Background:
- Ochratoxin A (OTA) is a nephrotoxic and nephrocarcinogenic mycotoxin.
- OTA administration in animals leads to DNA adduct formation, suggesting potential epigenetic effects.
- In vitro assays are crucial to distinguish direct DNA damage from indirect effects mediated by endogenous compounds.
Purpose of the Study:
- To investigate the in vitro metabolic activation of Ochratoxin A (OTA).
- To identify the specific DNA adducts formed and the target nucleotides.
- To elucidate the metabolic pathways involved in OTA's genotoxicity.
Main Methods:
- Incubation of salmon testes DNA with OTA using mouse or rabbit kidney and liver microsomes.
- Cofactors used included NADPH (cytochrome P450 pathway) and arachidonic acid (prostaglandin synthases/lipoxygenases).
- Detection of DNA adducts using the 32P postlabeling method; identification of modified nucleotides using dAMP, dGMP, dTMP, and dCMP.
Main Results:
- Significant DNA adduct formation (up to 126 adducts/10^9 nucleotides) was observed with kidney microsomes, particularly with arachidonic acid.
- Liver microsomes showed significantly lower adduct levels.
- Adducts were exclusively formed on guanine residues (dGMP), with three major adducts identified under both cofactor conditions.
Conclusions:
- Ochratoxin A is metabolized to genotoxic metabolites that directly interact with DNA.
- The results support the preferential activation of OTA by peroxidase activity (prostaglandin synthases/lipoxygenases) rather than cytochrome P450 pathways.
- These in vitro findings align with previous in vivo observations of OTA-induced DNA damage.
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