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In Vivo Alkaline Comet Assay and Enzyme-modified Alkaline Comet Assay for Measuring DNA Strand Breaks and Oxidative DNA Damage in Rat Liver
Published on: May 4, 2016
Ochratoxin a causes DNA damage and cytogenetic effects but no DNA adducts in rats
Angela Mally1, Gaetano Pepe, Srivani Ravoori
1Department of Toxicology, University of Würzburg, Germany.
Abstract:
Ochratoxin A (OTA) is a potent nephrotoxin and renal carcinogen in rats, but the mechanism of OTA tumorigenicity is unknown. Ochratoxin A has been shown to be negative in many genetic toxicology test in vitro. However, the potential of OTA to induce genotoxic effects has not been investigated in male rats, the most sensitive species for OTA-induced tumor formation. In this study, male F344 rats were repeatedly administered OTA (0, 250, 500, 1000, and 2000 microg/kg of body wt) or the non-chlorinated analogue ochratoxin B (OTB; 2000 microg/kg of body wt) for 2 weeks (5 days/week), and DNA breakage was analyzed in target and nontarget tissues using the comet assay both in the absence and presence of formamidopyrimidine-DNA (Fpg) glycosylase. Potential DNA-adduct formation was also analyzed in the target organ kidney by 32P-postlabeling using two different solvent systems. DNA-strand breaks were evident in liver, kidney, and spleen of animals treated with OTA, and a similar degree of DNA damage was observed in rats treated with OTB, despite the lower toxicity of OTB. Moreover, the presence of DNA damage did not correlate with histopathological alterations, which were evident in the kidney but not in the liver. In liver and kidney, the extent of DNA damage was further enhanced in the presence of Fpg glycosylase, which is known to convert oxidative DNA damage into strand breaks, suggesting the presence of oxidative DNA damage. Oxidative DNA damage as a mechanism of OTA-dependent DNA damage is consistent with the absence of lipophilic DNA adducts as assessed by 32P-postlabeling analysis. No spots indicative of OTA-related DNA adducts were observed in kidney DNA extracted from OTA-treated animals by 32P-postlabeling analysis, despite the use of synthetic standard for postulated adducts. A small, but not significant, increase in the incidence of chromosomal aberrations (essentially chromatid and chromosome-type deletions) was observed in splenocytes from rats treated with OTA in vivo and subsequently cultured in vitro to express chromosomal damage. These aberrations are also compatible with oxidative DNA lesions since they are not typically caused by chemical carcinogens which form covalent DNA adducts. Together, with the lack of evidence for formation of lipophilic DNA adducts as assessed by postlabeling, these data suggest that OTA may cause genetic damage in both target and nontarget tissues independent of direct covalent binding to DNA.
Insights
Ochratoxin A (OTA) causes DNA strand breaks and oxidative damage in male rats, independent of direct DNA adduct formation. This study investigates OTA
Area of Science:
- Toxicology
- Genetics
- Carcinogenesis
Background:
- Ochratoxin A (OTA) is a known nephrotoxin and carcinogen in rats, but its tumorigenesis mechanism remains unclear.
- Previous in vitro studies showed OTA as negative in genetic toxicology tests.
- Male rats are the most sensitive species for OTA-induced tumor formation, yet genotoxic effects in this group are understudied.
Purpose of the Study:
- To investigate the genotoxic potential of Ochratoxin A (OTA) in male F344 rats.
- To analyze DNA damage, including strand breaks and adducts, in target and non-target tissues.
- To explore the role of oxidative DNA damage in OTA-induced genotoxicity.
Main Methods:
- Male F344 rats were administered OTA or Ochratoxin B (OTB) for two weeks.
- DNA breakage was assessed using the comet assay with and without Fpg glycosylase.
- DNA adducts were analyzed via 32P-postlabeling in kidney tissue.
Main Results:
- DNA strand breaks were observed in the liver, kidney, and spleen of OTA-treated rats, and similarly in OTB-treated rats.
- Enhanced DNA damage in the presence of Fpg glycosylase suggests oxidative DNA damage.
- No significant lipophilic DNA adducts were detected by 32P-postlabeling, and chromosomal aberrations were minimal.
Conclusions:
- Ochratoxin A induces DNA damage, likely through oxidative mechanisms, in both target and non-target tissues of male rats.
- The observed genetic damage occurs independently of direct covalent binding to DNA.
- Findings suggest a non-genotoxic mechanism for OTA-induced carcinogenicity, warranting further investigation.
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