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Updated: May 12, 2026

A High-Throughput Comet Assay Approach for Assessing Cellular DNA Damage
Published on: May 10, 2022
Modulation of ochratoxin A induced DNA-damage in urothelial cell cultures
G H Degen1, S Lebrun, Y Lektarau
1Institut für Arbeitsphysiologie an der Universität Dortmund (IfADo), Ardeystr. 67, D-44139, Dortmund, degen@fado.de.
Abstract:
Despite good evidence for a genotoxic potential of ochratoxin A (OTA), the mechanism of OTA-induced genotoxicity (direct or indirect?) is still unclear. This calls for a further characterization of OTA-related DNA damage, and investigations of factors that may modulate dose-effect relationships in cells.Since bladder epithelium is a target tissue for the toxicity of OTA, its effects were studied in cultures of human bladder carcinoma (H5637) cells. Cytotoxicity of OTA, assessed by Neutral red (NR) uptake or Alamar-Blue assay, is concentration- and time-dependent: Upon 24 h treatment of 5637 cells, NR uptake is reduced by 50% with OTA concentrations of ≥0.2 microM, but not with 3 h treatment of the cells. Since cytotoxicity of OTA was not affected by addition of xenobiotic metabolizing enzymes (S-9 mix), it appears to be unrelated to biotransformation of the mycotoxin. Also, addition of S-9 mix did not significantly affect the genotoxicity of OTA as studied by alkaline single cell gel electrophoresis (Comet assay). DNA damage was detectable after 3 h treatment of cells at OTA concentrations between 0.1 and 1 microM, and increased further at higher concentrations. The magnitude of OTA-induced DNA damage did not increase with longer treatment times (18, 24 h), probably due to repair processes in the cells. Repair of OTA-induced lesions is quite efficient in kidney (Arch Toxicol 2002, 75, 734-741) and in porcine bladder cells (Föllmann and Lebrun, 2005, Mycotoxin Research, this volume). Interestingly, the genotoxicity of OTA is modulated by the pH of the culture medium, with higher damage at pH 5 compared to pH 7.5. In line with this, uptake studies with tritiated OTA show a higher cellular accumulation of the mycotoxin at pH 5 than in buffer of pH 7.5. Thus, bladder cells exposed to OTA in slightly acidic urine (which facilitates reabsorption) may be at higher risk.
Insights
Ochratoxin A (OTA) causes DNA damage in human bladder cells, with higher genotoxicity observed at acidic pH. This suggests increased risk for bladder cells exposed to OTA in acidic urine.
Area of Science:
- Toxicology
- Molecular Biology
- Cell Biology
Background:
- Ochratoxin A (OTA) is a mycotoxin with known genotoxic potential.
- The precise mechanism of OTA-induced genotoxicity and factors influencing its effects remain unclear.
- Bladder epithelium is a known target tissue for OTA toxicity.
Purpose of the Study:
- To characterize OTA-induced DNA damage in human bladder carcinoma cells (H5637).
- To investigate factors modulating OTA's dose-effect relationship, including pH and metabolic activation.
- To assess the cytotoxicity and genotoxicity of OTA in a relevant cellular model.
Main Methods:
- Cytotoxicity assessed using Neutral red (NR) uptake and Alamar-Blue assays.
- Genotoxicity evaluated by alkaline single cell gel electrophoresis (Comet assay).
- Experiments conducted with and without S-9 mix to assess metabolic role; pH modulation studied.
Main Results:
- OTA exhibited concentration- and time-dependent cytotoxicity.
- Cytotoxicity was not influenced by xenobiotic metabolizing enzymes (S-9 mix).
- DNA damage was detected after 3 hours of OTA exposure, increasing with concentration but not longer exposure times, suggesting repair.
- Genotoxicity was significantly higher at pH 5 compared to pH 7.5, correlating with increased cellular OTA accumulation at lower pH.
Conclusions:
- OTA's cytotoxicity and genotoxicity in bladder cells appear independent of metabolic activation.
- Cellular repair mechanisms efficiently counteract OTA-induced DNA damage over time.
- The genotoxicity of OTA is significantly modulated by pH, with acidic conditions increasing DNA damage and cellular uptake.
- Bladder cells may face a higher risk from OTA exposure in the slightly acidic environment of urine.
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