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.

Mycotoxin Research
|April 23, 2013
PubMed

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.