Mouse hepatoma cell lines differing in aryl hydrocarbon receptor-mediated signaling have different activities for

B Burkhardt1, S A Jung, E Pfeiffer

  • 1Institute of Applied Biosciences, Karlsruhe Institute of Technology, Adenauerring 20a, 76131 Karlsruhe, Germany.

Archives of Toxicology
|December 7, 2011
PubMed

Insights

Mouse liver cells efficiently detoxify alternariol (AOH) through glucuronidation, preventing cell cycle arrest. This highlights the importance of considering UDP-glucuronosyl transferase activity in toxicity studies.

Area of Science:

  • Toxicology
  • Cell Biology
  • Biochemistry

Background:

  • Mycotoxins alternariol (AOH) and alternariol methyl ether (AME) exhibit aryl hydrocarbon receptor (AhR)-dependent toxicity.
  • Hepa-1 cell lines with varying AhR signaling were used to investigate metabolic differences.

Purpose of the Study:

  • Compare hydroxylation, methylation, and glucuronidation activities of AOH and AME in different Hepa-1 cell lines.
  • Investigate the role of UDP-glucuronosyl transferase (UGT) activity in AOH-induced cell cycle arrest.

Main Methods:

  • Incubation of Hepa-1 cell lines (c1c4, c1c7, c1c12) with AOH and AME.
  • Assay of cytochrome P450 monooxygenase, catechol-O-methyl transferase, and UGT activities.
  • Analysis of G2/M cell cycle arrest using flow cytometry.
  • Addition of β-glucuronidase to assess the impact of glucuronidation reversal.

Main Results:

  • UGT activity was significantly higher in Hepa-1c1c4 cells compared to c1c7 and c1c12 cells.
  • Glucuronidation rate of AOH was four times higher than AME across all cell types.
  • AME caused G2/M arrest in all cell lines, while AOH only arrested c1c7 and c1c12 cells.
  • AOH induced cell cycle arrest in Hepa-1c1c4 cells upon addition of β-glucuronidase, reversing glucuronidation.

Conclusions:

  • Efficient AOH glucuronidation in Hepa-1c1c4 cells prevents cell cycle inhibition.
  • High UGT activity in Hepa-1c1c4 cells influences the study of other compounds.
  • β-glucuronidase can overcome cell-type-specific differences in glucuronide formation.