Related Experiment Video
Updated: May 26, 2026

Protocol for the Differentiation of Human Induced Pluripotent Stem Cells into Mixed Cultures of Neurons and Glia for Neurotoxicity Testing
Published on: June 9, 2017
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.
Abstract:
For studies on the aryl hydrocarbon receptor (AhR)-dependent toxicity of the mycotoxins alternariol (AOH) and alternariol methyl ether (AME), three mouse hepatoma (Hepa-1) cell lines with intact and with compromised AhR signaling were compared with respect to their activities for hydroxylation, methylation, and glucuronidation. Whereas the activities of cytochrome P450-mediated monooxygenase and catechol-O-methyl transferase were very low and did not differ between the three cell lines, a pronounced difference was observed for UDP-glucuronosyl transferase activity, which was much higher in Hepa-1c1c4 than in c1c7 and c1c12 cells. In all three cell types, the rate of glucuronidation of AOH was about four times higher than that of AME. Whereas AME caused a concentration-dependent G2/M arrest in each cell line, AOH arrested Hepa-1c1c7 and c1c12 cells but not c1c4 cells. However, Hepa-1c1c4 cells were arrested by AOH when β-glucuronidase was added to the incubation medium in order to reverse the formation of AOH glucuronides. We conclude that the failure of AOH to cause cell cycle inhibition in Hepa-1c1c4 cells is due to its efficient glucuronidation. The considerable UDP-glucuronosyl transferase activity of Hepa-1c1c4 cells should be taken into account when other compounds are studied in this cell line. Moreover, we demonstrate that differences in glucuronide formation between cell types can be overcome by the addition of β-glucuronidase to the cell culture medium.
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.
More Related Videos
10:28Flow Cytometry-based Drug Screening System for the Identification of Small Molecules That Promote Cellular Differentiation of Glioblastoma Stem Cells
Published on: January 10, 2018
10:44Mass Spectrometry and Luminogenic-based Approaches to Characterize Phase I Metabolic Competency of In Vitro Cell Cultures
Published on: March 28, 2017