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Constitutive androstane receptor mediates PCB-induced disruption of retinoid homeostasis
Igor O Shmarakov1, Yun Jee Lee1, Hongfeng Jiang1
1Department of Medicine, Vagelos College of Physicians and Surgeons, Columbia University, 630 West 168th Street, New York, NY 10032, USA.
Abstract:
Environmental exposure to polychlorinated biphenyls (PCBs) is associated with an increased risk of incidence of metabolic disease, however the molecular mechanisms underlying this phenomenon are not fully understood. Our study provides new insights into molecular interactions between PCBs and retinoids (vitamin A and its metabolites) by defining a role for constitutive androstane receptor (CAR) in the disruption of retinoid homeostasis by non-coplanar 2,2',4,4',5,5'-hexachlorobiphenyl (PCB153). Administration of four weekly 50 mg/kg doses of PCB153 to C57BL/6 male mice resulted in a significant decline in the tissue concentrations of retinyl esters, retinol and all-trans-retinoic acid (atRA), while no decline in hepatic and adipose tissue retinoid levels were detected in Car-null littermates. Our data imply that disrupted retinoid homeostasis occurs as a consequence of PCB153-induced activation of CAR, and raise the possibility that CAR signaling can affect atRA homeostasis in vivo. A strong correlation between the changes in retinoid metabolism and extensive upregulation of hepatic CAR-driven Cyp2b10 expression implicates this CYP isoform as contributing to retinoid homeostasis disruption via atRA oxidation during PCB153 exposure. In response to PCB153-induced CAR activation and disruption of retinoid homeostasis, expression of hepatic Pepck, Cd36 and adipose tissue Pparγ, Cd36, Adipoq, and Rbp4 were altered; however, this was reversed by administration of exogenous dietary retinoids (300 IU daily for 4 weeks). Our study establishes that PCB153 exposure enables a significant disruption of retinoid homeostasis in a CAR-dependent manner. We propose that this contributes to the obesogenic properties of PCB153 and may contribute to the predisposition to the metabolic disease.
Insights
Environmental exposure to polychlorinated biphenyls (PCBs) disrupts vitamin A (retinoid) balance through constitutive androstane receptor (CAR) activation. This disruption, linked to metabolic disease, can be reversed with retinoid supplementation.
Area of Science:
- Environmental Health
- Toxicology
- Endocrinology
Background:
- Environmental polychlorinated biphenyls (PCBs) exposure is linked to metabolic disease.
- Molecular mechanisms connecting PCBs and metabolic disruption remain unclear.
- Retinoids (vitamin A and metabolites) play crucial roles in metabolic regulation.
Purpose of the Study:
- To investigate the role of constitutive androstane receptor (CAR) in PCB-induced retinoid homeostasis disruption.
- To elucidate the molecular interactions between PCB153 and retinoid metabolism.
- To understand the contribution of retinoid disruption to PCB-induced metabolic dysfunction.
Main Methods:
- Administration of PCB153 to C57BL/6 male mice and Car-null littermates.
- Quantification of tissue retinoid concentrations (retinyl esters, retinol, all-trans-retinoic acid).
- Analysis of hepatic and adipose tissue gene expression (Cyp2b10, Pepck, Cd36, Pparγ, Adipoq, Rbp4).
- Assessment of retinoid homeostasis restoration via exogenous dietary retinoids.
Main Results:
- PCB153 exposure significantly decreased tissue retinoid levels in wild-type mice but not in Car-null mice.
- PCB153-induced CAR activation led to upregulation of hepatic Cyp2b10, correlating with retinoid disruption.
- Altered expression of metabolic genes (Pepck, Cd36, Pparγ, Adipoq, Rbp4) was observed but reversed by retinoid supplementation.
- PCB153 disrupted retinoid homeostasis in a CAR-dependent manner.
Conclusions:
- Constitutive androstane receptor (CAR) mediates PCB153-induced disruption of retinoid homeostasis.
- This disruption contributes to the obesogenic effects of PCB153 and metabolic disease predisposition.
- Targeting CAR or restoring retinoid balance may offer therapeutic strategies for PCB-related metabolic disorders.
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