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Toxicogenomic effects common to triazole antifungals and conserved between rats and humans
1National Center for Computational Toxicology, Office of Research and Development, U.S. Environmental Protection Agency, Research Triangle Park, North Carolina 27711, USA.
Abstract:
The triazole antifungals myclobutanil, propiconazole and triadimefon cause varying degrees of hepatic toxicity and disrupt steroid hormone homeostasis in rodent in vivo models. To identify biological pathways consistently modulated across multiple timepoints and various study designs, gene expression profiling was conducted on rat livers from three separate studies with triazole treatment groups ranging from 6 h after a single oral gavage exposure, to prenatal to adult exposures via feed. To explore conservation of responses across species, gene expression from the rat liver studies were compared to in vitro data from rat and human primary hepatocytes exposed to the triazoles. Toxicogenomic data on triazoles from 33 different treatment groups and 135 samples (microarrays) identified thousands of probe sets and dozens of pathways differentially expressed across time, dose, and species--many of these were common to all three triazoles, or conserved between rodents and humans. Common and conserved pathways included androgen and estrogen metabolism, xenobiotic metabolism signaling through CAR and PXR, and CYP mediated metabolism. Differentially expressed genes included the Phase I xenobiotic, fatty acid, sterol and steroid metabolism genes Cyp2b2 and CYP2B6, Cyp3a1 and CYP3A4, and Cyp4a22 and CYP4A11; Phase II conjugation enzyme genes Ugt1a1 and UGT1A1; and Phase III ABC transporter genes Abcb1 and ABCB1. Gene expression changes caused by all three triazoles in liver and hepatocytes were concentrated in biological pathways regulating lipid, sterol and steroid homeostasis, identifying a potential common mode of action conserved between rodents and humans. Modulation of hepatic sterol and steroid metabolism is a plausible mode of action for changes in serum testosterone and adverse reproductive outcomes observed in rat studies, and may be relevant to human risk assessment.
Insights
Triazole antifungals cause liver toxicity by disrupting steroid hormone pathways. These effects are conserved across species, suggesting a common mode of action relevant to human risk assessment.
Area of Science:
- Toxicology
- Genomics
- Endocrinology
Background:
- Triazole antifungals (myclobutanil, propiconazole, triadimefon) induce hepatic toxicity and disrupt steroid hormone homeostasis in rodents.
- Understanding conserved biological pathways affected by these triazoles is crucial for risk assessment.
Purpose of the Study:
- To identify biological pathways consistently modulated by triazoles across different time points and study designs.
- To explore the conservation of triazole-induced gene expression responses between rodent and human models.
Main Methods:
- Gene expression profiling (microarrays) of rat livers from three separate studies with varying triazole exposure durations and methods.
- Comparison of rat liver gene expression data with in vitro data from rat and human primary hepatocytes exposed to triazoles.
- Analysis of toxicogenomic data from 33 treatment groups and 135 samples.
Main Results:
- Thousands of probe sets and dozens of pathways were differentially expressed across time, dose, and species.
- Common and conserved pathways included androgen/estrogen metabolism, xenobiotic metabolism (via CAR and PXR), and CYP-mediated metabolism.
- Key differentially expressed genes involved in Phase I, II, and III metabolism and transport were identified, including Cyp2b2/CYP2B6, Cyp3a1/CYP3A4, Cyp4a22/CYP4A11, Ugt1a1/UGT1A1, and Abcb1/ABCB1.
Conclusions:
- Triazole-induced gene expression changes in liver and hepatocytes are concentrated in pathways regulating lipid, sterol, and steroid homeostasis.
- A common mode of action for triazole toxicity, conserved between rodents and humans, involves the modulation of hepatic sterol and steroid metabolism.
- This conserved mechanism provides a plausible explanation for observed adverse reproductive outcomes and is relevant for human risk assessment.
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