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Reverse Yeast Two-hybrid System to Identify Mammalian Nuclear Receptor Residues that Interact with Ligands and/or Antagonists
Published on: November 15, 2013
The constitutive androstane receptor and pregnane X receptor function coordinately to prevent bile acid-induced
Jun Zhang1, Wendong Huang, Mohammed Qatanani
1Department of Molecular and Cellular Biology, Baylor College of Medicine, Houston, Texas 77030, USA.
Abstract:
A double null mouse line (2XENKO) lacking the xenobiotic receptors CAR (constitutive androstane receptor) (NR1I3) and PXR (pregnane X receptor) (NR1I2) was generated to study their functions in response to potentially toxic xenobiotic and endobiotic stimuli. Like the single knockouts, the 2XENKO mice are viable and fertile and show no overt phenotypes under normal conditions. As expected, they are completely insensitive to broad range xenobiotic inducers able to activate both receptors, such as clotrimazole and dieldrin. Comparisons of the single and double knockouts reveal specific roles for the two receptors. Thus, PXR does not contribute to the process of acetaminophen hepatotoxicity mediated by CAR, but both receptors contribute to the protective response to the hydrophobic bile acid lithocholic acid (LCA). As previously observed with PXR (Xie, W., Radominska-Pandya, A., Shi, Y., Simon, C. M., Nelson, M. C., Ong, E. S., Waxman, D. J., and Evans, R. M. (2001) Proc. Natl. Acad. Sci. U. S. A. 98, 3375-3380), pharmacologic activation of CAR induces multiple LCA detoxifying enzymes and provides strong protection against LCA toxicity. Comparison of their responses to LCA treatment demonstrates that CAR predominantly mediates induction of the cytochrome p450 CYP3A11 and the multidrug resistance-associated protein 3 transporter, whereas PXR is the major regulator of the Na+-dependent organic anion transporter 2. These differential responses may account for the significant sensitivity of the CAR knockouts, but not the PXR knockouts, to an acute LCA dose. Because this sensitivity is not further increased in the 2XENKO mice, CAR may play a primary role in acute responses to this toxic endobiotic. These results define a central role for CAR in LCA detoxification and show that CAR and PXR function coordinately to regulate both xenobiotic and bile acid metabolism.
Insights
Mice lacking both CAR and PXR receptors are insensitive to certain toxins. CAR plays a key role in detoxifying bile acids like LCA, while both receptors coordinate xenobiotic and bile acid metabolism.
Area of Science:
- Pharmacology
- Toxicology
- Molecular Biology
Background:
- Xenobiotic receptors like Constitutive Androstane Receptor (CAR) and Pregnane X Receptor (PXR) are crucial for drug and toxin metabolism.
- Understanding their specific roles and interplay is essential for predicting responses to various stimuli.
Purpose of the Study:
- To investigate the distinct and overlapping functions of CAR and PXR in response to xenobiotic and endobiotic challenges.
- To characterize the roles of CAR and PXR in the metabolism and detoxification of the bile acid lithocholic acid (LCA).
Main Methods:
- Generation of a double knockout mouse line (2XENKO) lacking both CAR and PXR.
- Phenotypic analysis of knockout mice under normal conditions and in response to specific inducers and toxins.
- Comparative analysis of single (CAR KO, PXR KO) and double (2XENKO) knockout mice responses to acetaminophen and LCA.
Main Results:
- 2XENKO mice exhibited complete insensitivity to broad-spectrum inducers like clotrimazole and dieldrin.
- CAR, not PXR, mediated acetaminophen-induced hepatotoxicity.
- Both CAR and PXR contributed to LCA detoxification, with CAR primarily inducing CYP3A11 and MRP3, and PXR regulating OST2.
- CAR knockouts showed significant sensitivity to acute LCA, which was not exacerbated in 2XENKO mice, suggesting a primary role for CAR in acute LCA response.
Conclusions:
- CAR plays a predominant role in the acute detoxification of the toxic bile acid LCA.
- CAR and PXR exhibit both distinct and coordinated functions in regulating xenobiotic and bile acid metabolism.
- These findings provide insights into the complex regulatory network governing the response to toxic insults.
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