Comparing Transgenic Production to Supplementation of ω-3 PUFA Reveals Distinct But Overlapping Mechanisms Underlying Protection Against Metabolic and Hepatic Disorders

Author:

Daniel Noëmie123,Le Barz Mélanie234,Mitchell Patricia L23,Varin Thibault V23,Julien Isabelle Bourdeau35,Farabos Dominique6,Pilon Geneviève23,Gauthier Josée7,Garofalo Carole8,Kang Jing X9,Trottier Jocelyn10,Barbier Olivier10,Roy Denis13,Chassaing Benoit11,Levy Emile8,Raymond Frédéric35,Lamaziere Antonin6ORCID,Flamand Nicolas245,Silvestri Cristoforo2345,Jobin Christian7,Di Marzo Vincenzo234512,Marette André234ORCID

Affiliation:

1. Faculty of Agricultural and Food Sciences, School of Nutrition, Laval University , Quebec, QC G1V 0A6 , Canada

2. Quebec Heart and Lung Institute Research Centre, Laval University, Quebec , QC G1V 4G5 , Canada

3. Institute of Nutrition and Functional Foods (INAF), Centre NUTRISS, Quebec , QC G1V 0A6 , Canada

4. Faculty of Medicine, Department of Medicine, Laval University , QC G1V 0A6 , Canada

5. Canada Excellence Research Chair on the Microbiome-Endocannabinoidome Axis in Metabolic Health (CERC-MEND), Laval University , Quebec, QC G1V 0A6 , Canada

6. Saint Antoine Research Center, Sorbonne University INSERM UMR 938; Assistance Publique - Hôpitaux de Paris, Clinical Metabolomics department, Hôpital Saint Antoine , Paris, 75571 , France

7. Department of Medicine, Department of Infectious Diseases and Immunology, and Department of Anatomy and Cell Physiology, University of Florida , Gainesville FL, 32608 , USA

8. Department of Nutrition, University of Montreal, Montreal QC H3T 1A8, Canada and Research Centre, Sainte-Justine Hospital , Montreal, QC H3T 1C5 , Canada

9. Laboratory for Lipid Medicine and Technology, Department of Medicine, Massachusetts General Hospital and Harvard Medical School , Charlestown MA 02129 , USA

10. Laboratory of Molecular Pharmacology, CHU-Quebec Research Centre, and Faculty of Pharmacy, Laval University , Quebec, QC G1V 0A6 , Canada

11. INSERM U1016, Mucosal Microbiota in Chronic Inflammatory Diseases’ Team, CNRS UMR 8104, University of Paris , Paris, 75014 , France

12. Joint International Research Unit on Chemical and Biomolecular Research on the Microbiome and its Impact on Metabolic Health and Nutrition between Laval University and Consiglio Nazionale delle Ricerche, Institute of Biomolecular Chemistry , Campania, 80078 , Italy

Abstract

Abstract We compared endogenous ω-3 PUFA production to supplementation for improving obesity-related metabolic dysfunction. Fat-1 transgenic mice, who endogenously convert exogenous ω-6 to ω-3 PUFA, and wild-type littermates were fed a high-fat diet and a daily dose of either ω-3 or ω-6 PUFA-rich oil for 12 wk. The endogenous ω-3 PUFA production improved glucose intolerance and insulin resistance but not hepatic steatosis. Conversely, ω-3 PUFA supplementation fully prevented hepatic steatosis but failed to improve insulin resistance. Both models increased hepatic levels of ω-3 PUFA-containing 2-monoacylglycerol and N-acylethanolamine congeners, and reduced levels of ω-6 PUFA-derived endocannabinoids with ω-3 PUFA supplementation being more efficacious. Reduced hepatic lipid accumulation associated with the endocannabinoidome metabolites EPEA and DHEA, which was causally demonstrated by lower lipid accumulation in oleic acid-treated hepatic cells treated with these metabolites. While both models induced a significant fecal enrichment of the beneficial Allobaculum genus, mice supplemented with ω-3 PUFA displayed additional changes in the gut microbiota functions with a significant reduction of fecal levels of the proinflammatory molecules lipopolysaccharide and flagellin. Multiple-factor analysis identify that the metabolic improvements induced by ω-3 PUFAs were accompanied by a reduced production of the proinflammatory cytokine TNFα, and that ω-3 PUFA supplementation had a stronger effect on improving the hepatic fatty acid profile than endogenous ω-3 PUFA. While endogenous ω-3 PUFA production preferably improves glucose tolerance and insulin resistance, ω-3 PUFA intake appears to be required to elicit selective changes in hepatic endocannabinoidome signaling that are essential to alleviate high-fat diet-induced hepatic steatosis.

Funder

Canadian Institutes of Health Research

Quebec Cardiometabolic Health, Diabetes and Obesity

Publisher

Oxford University Press (OUP)

Subject

General Medicine

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