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Published on: September 9, 2021
Comparative transcriptomic and metabolomic analysis of fenofibrate and fish oil treatments in mice
Yingchang Lu1, Mark V Boekschoten, Suzan Wopereis
1Nutrition, Metabolism and Genomics group, Division of Human Nutrition, Wageningen University, Wageningen, the Netherlands.
Abstract:
Elevated circulating triglycerides, which are considered a risk factor for cardiovascular disease, can be targeted by treatment with fenofibrate or fish oil. To gain insight into underlying mechanisms, we carried out a comparative transcriptomics and metabolomics analysis of the effect of 2 wk treatment with fenofibrate and fish oil in mice. Plasma triglycerides were significantly decreased by fenofibrate (-49.1%) and fish oil (-21.8%), whereas plasma cholesterol was increased by fenofibrate (+29.9%) and decreased by fish oil (-32.8%). Levels of various phospholipid species were specifically decreased by fish oil, while levels of Krebs cycle intermediates were increased specifically by fenofibrate. Plasma levels of many amino acids were altered by fenofibrate and to a lesser extent by fish oil. Both fenofibrate and fish oil upregulated genes involved in fatty acid metabolism and downregulated genes involved in blood coagulation and fibrinolysis. Significant overlap in gene regulation by fenofibrate and fish oil was observed, reflecting their property as high or low affinity agonist for peroxisome proliferator-activated receptor-α, respectively. Fenofibrate specifically downregulated genes involved in complement cascade and inflammatory response. Fish oil specifically downregulated genes involved in cholesterol and fatty acid biosynthesis and upregulated genes involved in amino acid and arachidonic acid metabolism. Taken together, the data indicate that despite being similarly potent toward modulating plasma free fatty acids, cholesterol, and triglyceride levels, fish oil causes modest changes in gene expression likely via activation of multiple mechanistic pathways, whereas fenofibrate causes pronounced gene expression changes via a single pathway, reflecting the key difference between nutritional and pharmacological intervention.
Insights
Fenofibrate and fish oil both lower triglycerides but differ in their molecular effects. Fenofibrate impacts gene expression significantly via one pathway, while fish oil shows modest changes through multiple pathways.
Area of Science:
- Biochemistry
- Pharmacology
- Genomics
Background:
- Elevated triglycerides are a cardiovascular disease risk factor.
- Fenofibrate and fish oil are treatments targeting high triglycerides.
- Understanding their distinct mechanisms is crucial for cardiovascular health.
Purpose of the Study:
- To comparatively analyze the transcriptomic and metabolomic effects of fenofibrate and fish oil.
- To elucidate the underlying molecular mechanisms of triglyceride reduction by these agents.
- To differentiate between pharmacological and nutritional interventions for hypertriglyceridemia.
Main Methods:
- Comparative transcriptomics and metabolomics analysis in a mouse model.
- 2-week treatment with fenofibrate and fish oil.
- Quantification of plasma lipids, phospholipids, amino acids, and Krebs cycle intermediates.
Main Results:
- Both fenofibrate and fish oil reduced plasma triglycerides; fenofibrate also increased cholesterol, while fish oil decreased it.
- Fenofibrate increased Krebs cycle intermediates and downregulated inflammatory genes.
- Fish oil decreased specific phospholipids and downregulated cholesterol/fatty acid biosynthesis genes.
- Both treatments modulated fatty acid metabolism genes and peroxisome proliferator-activated receptor-α (PPARα) activity.
Conclusions:
- Fenofibrate and fish oil exhibit distinct molecular profiles despite similar triglyceride-lowering effects.
- Fenofibrate acts as a potent peroxisome proliferator-activated receptor-α (PPARα) agonist, causing pronounced gene expression changes.
- Fish oil elicits more modest, multifactorial gene expression changes, reflecting its nature as a nutritional intervention.
- These findings highlight key differences between pharmacological and nutritional approaches to managing dyslipidemia.

