Identification of chemical modulators of the constitutive activated receptor (CAR) in a gene expression compendium

Keiyu Oshida1, Naresh Vasani1, Carlton Jones1

  • 1National Health and Environmental Effects Research Laboratory, US Environmental Protection Agency, (KO, NV, CJ, TM, SH, SN), NIEHS (SA) and Bayer CropScience (DRG), Research Triangle Park, NC 27711; Department of Pharmacology and Toxicology, Rutgers University, Piscataway, NJ (LMA), The Hamner Institutes for Health Sciences, Research Triangle Park, NC 27709 (RST), RegeneMed, San Diego, CA (DA), Department of Environmental and Occupational Health Sciences, School of Public Health, University of Washington, Seattle, WA (CDK) and the Integrated Systems Toxicology Division, National Health and Environmental Effects Research Lab, US Environmental Protection Agency, Research Triangle Park, NC 27711 (JCC).

Insights

We developed a biomarker signature to accurately screen for chemicals that alter constitutive activated receptor (CAR) activity. This method identified new CAR activators and suppressors, revealing promiscuous CAR signaling pathways.

Area of Science:

  • Toxicology and Pharmacology
  • Molecular Biology
  • Environmental Health

Background:

  • Constitutive activated receptor (CAR) is a nuclear receptor regulating xenobiotic metabolism and transport.
  • CAR dysregulation is linked to liver cancer, steatosis, and insulin insensitivity.
  • Accurate methods are needed to screen chemicals affecting CAR activity.

Purpose of the Study:

  • To develop and validate analytical methods for screening chemical effects on CAR activity.
  • To identify novel chemicals that activate or suppress CAR using a gene expression compendium.

Main Methods:

  • Developed an 83-gene CAR biomarker signature from mouse liver gene expression data.
  • Utilized a rank-based algorithm (Running Fisher's) to assess biomarker similarity.
  • Applied the signature to a large database of mouse liver and hepatocyte gene expression profiles.

Main Results:

  • Achieved 97% balanced accuracy in predicting CAR activation using the biomarker signature.
  • Identified CAR activation by aryl hydrocarbon receptor (AhR), pregnane X receptor (PXR), and PPARα activators.
  • Found consistent CAR activation by conazole fungicides and perfluorinated compounds; identified CAR-dependent and independent effects of propiconazole and PFOA, respectively.
  • Discovered CAR suppression by inflammatory agents like acetaminophen and lipopolysaccharide.

Conclusions:

  • A CAR biomarker signature combined with a rank-based similarity method accurately predicts CAR activation.
  • This approach expands the known repertoire of CAR-activating chemicals, highlighting its promiscuous nature.
  • The study reveals cross-talk between CAR and other xenobiotic-activated receptors.

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