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Comparative xenobiotic metabolism between Tg.AC and p53+/- genetically altered mice and their respective wild types
J M Sanders1, L T Burka, B Chanas
1Laboratory of Pharmacology and Chemistry, National Toxicology Program, National Institute of Environmental Health Sciences, MD C3-02, P.O. Box 12233, Research Triangle Park, North Carolina 27709-2233, USA. sandersm@niehs.nih.gov
Abstract:
The use of transgenic animals, such as v-Ha-ras activated (TG:AC) and p53+/- mice, offers great promise for a rapid and more sensitive assay for chemical carcinogenicity. Some carcinogens are metabolically activated; therefore, it is critical that the altered genome of either of these model systems does not compromise their capability and capacity for metabolism of xenobiotics. The present work tests the generally held assumption that xenobiotic metabolism in the TG:AC and p53+/- mouse is not inherently different from that of the respective wild type, the FVB/N and C57BL/6 mouse, by comparing each genotype's ability to metabolize benzene, ethoxyquin, or methacrylonitrile. Use of these representative substrates offers the opportunity to examine arene oxide formation, aromatic ring opening, hydroxylation, epoxidation, O-deethylation, and a number of conjugation reactions. Mice were treated by gavage with (14)C-labeled parent compound, excreta were collected, and elimination routes and rates, as well as (14)C-derived metabolite profiles in urine, were compared between relevant treatment groups. Results of this study indicated that metabolism of the 3 parent compounds was not appreciably altered between either FVB/N and TG:AC mice or C57BL/6 and p53+/- mice. Further, expression of CYP1A2, CYP2E1, CYP3A, and GST-alpha in liver of naive genetically altered mice was similar to that of corresponding wild-type mice. Thus, these results suggest that the inherent ability of TG:AC and p53+/- mice to metabolize xenobiotics is not compromised by their altered genomes and would not be a factor in data interpretation of toxicity studies using either transgenic mouse line.
Insights
Transgenic mouse models (TG:AC and p53+/-) effectively metabolize xenobiotics, validating their use in carcinogenicity assays. Their metabolic capacity is comparable to wild-type mice, ensuring reliable toxicity study data.
Area of Science:
- Toxicology
- Genetics
- Biochemistry
Background:
- Transgenic mouse models (TG:AC and p53+/-) are valuable tools for carcinogenicity testing.
- Assessing xenobiotic metabolism in these models is crucial for data interpretation.
- Potential alterations in metabolic pathways could impact toxicity study outcomes.
Purpose of the Study:
- To evaluate if xenobiotic metabolism differs between TG:AC and wild-type FVB/N mice.
- To determine if xenobiotic metabolism differs between p53+/- and wild-type C57BL/6 mice.
- To confirm the suitability of TG:AC and p53+/- mice for chemical carcinogenicity assays.
Main Methods:
- Comparison of benzene, ethoxyquin, and methacrylonitrile metabolism in TG:AC/FVB/N and p53+/-/C57BL/6 mice.
- Analysis of xenobiotic metabolism through excreta collection and radiolabeled compound tracking.
- Assessment of key enzyme expression (CYP1A2, CYP2E1, CYP3A, GST-alpha) in mouse liver.
Main Results:
- Metabolism of the tested xenobiotics was not significantly altered in TG:AC or p53+/- mice compared to their wild-type counterparts.
- Elimination rates and metabolite profiles were similar across genotypes.
- Expression levels of critical metabolic enzymes were comparable between transgenic and wild-type mice.
Conclusions:
- The metabolic capacity for xenobiotics in TG:AC and p53+/- mice is not compromised by their genetic modifications.
- These transgenic mouse lines are suitable for chemical carcinogenicity testing without confounding metabolic differences.
- The findings support the use of these models for reliable toxicity and carcinogenicity assessments.

