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Published on: March 28, 2013
Crosstalk between CYP2E1 and PPARα substrates and agonists modulate adipose browning and obesity
Youbo Zhang1,2, Tingting Yan2, Tianxia Wang1,3
1State Key Laboratory of Natural and Biomimetic Drugs and Department of Natural Medicines, School of Pharmaceutical Sciences, Peking University, Beijing 100191, China.
Abstract:
Although the functions of metabolic enzymes and nuclear receptors in controlling physiological homeostasis have been established, their crosstalk in modulating metabolic disease has not been explored. Genetic ablation of the xenobiotic-metabolizing cytochrome P450 enzyme CYP2E1 in mice markedly induced adipose browning and increased energy expenditure to improve obesity. CYP2E1 deficiency activated the expression of hepatic peroxisome proliferator-activated receptor alpha (PPARα) target genes, including fibroblast growth factor (FGF) 21, that upon release from the liver, enhanced adipose browning and energy expenditure to decrease obesity. Nineteen metabolites were increased in Cyp2e1-null mice as revealed by global untargeted metabolomics, among which four compounds, lysophosphatidylcholine and three polyunsaturated fatty acids were found to be directly metabolized by CYP2E1 and to serve as PPARα agonists, thus explaining how CYP2E1 deficiency causes hepatic PPARα activation through increasing cellular levels of endogenous PPARα agonists. Translationally, a CYP2E1 inhibitor was found to activate the PPARα-FGF21-beige adipose axis and decrease obesity in wild-type mice, but not in liver-specific Ppara-null mice. The present results establish a metabolic crosstalk between PPARα and CYP2E1 that supports the potential for a novel anti-obesity strategy of activating adipose tissue browning by targeting the CYP2E1 to modulate endogenous metabolites beyond its canonical role in xenobiotic-metabolism.
Insights
Genetic ablation of cytochrome P450 enzyme CYP2E1 boosts energy expenditure and combats obesity by promoting adipose browning. This occurs via activation of the nuclear receptor PPARα and its target FGF21, revealing a novel metabolic crosstalk.
Area of Science:
- Metabolic disease research
- Endocrinology
- Obesity research
Background:
- Metabolic enzymes and nuclear receptors are crucial for homeostasis.
- Their crosstalk in metabolic disease remains underexplored.
- Cytochrome P450 enzyme CYP2E1's role in metabolism is established.
Purpose of the Study:
- To investigate the crosstalk between CYP2E1 and nuclear receptors in metabolic disease.
- To explore the role of CYP2E1 in modulating obesity.
- To identify mechanisms linking CYP2E1 to energy expenditure and adipose tissue browning.
Main Methods:
- Genetic ablation of CYP2E1 in mice.
- Global untargeted metabolomics.
- Analysis of hepatic PPARα target gene expression (e.g., FGF21).
- Administration of a CYP2E1 inhibitor in vivo.
- Studies using liver-specific Ppara-null mice.
Main Results:
- CYP2E1 deficiency induced adipose browning and increased energy expenditure, improving obesity.
- CYP2E1 deficiency activated hepatic PPARα target genes, including FGF21.
- Metabolomic analysis revealed increased endogenous PPARα agonists in Cyp2e1-null mice.
- A CYP2E1 inhibitor reduced obesity in wild-type mice by activating the PPARα-FGF21-beige adipose axis.
Conclusions:
- Establishes a metabolic crosstalk between PPARα and CYP2E1.
- CYP2E1 deficiency activates PPARα signaling through endogenous metabolites.
- Targeting CYP2E1 offers a novel anti-obesity strategy by modulating metabolites and activating adipose tissue browning.
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