| Literature DB >> 34619367 |
Anandita Pal1, Shan Sun2, Michael Armstrong3, Jonathan Manke3, Nicole Reisdorph3, Victoria R Adams4, Arion Kennedy4, Yujiao Zu5, Naima Moustaid-Moussa5, Ian Carroll1, Saame Raza Shaikh6.
Abstract
Eicosapentaenoic acid (EPA) ethyl esters are of interest given their clinical approval for lowering circulating triglycerides and cardiometabolic disease risk. EPA ethyl esters prevent metabolic complications driven by a high fat diet in male mice; however, their impact on female mice is less studied. Herein, we first investigated how EPA influences the metabolic profile of female C57BL/6J mice consuming a high fat diet. EPA lowered murine fat mass accumulation, potentially through increased biosynthesis of 8-hydroxyeicosapentaenoic acid (HEPE), as revealed by mass spectrometry and cell culture studies. EPA also reversed the effects of a high fat diet on circulating levels of insulin, glucose, and select inflammatory/metabolic markers. Next, we studied if the improved metabolic profile of obese mice consuming EPA was associated with a reduction in the abundance of key gut Gram-negative bacteria that contribute toward impaired glucose metabolism. Using fecal 16S-ribosomal RNA gene sequencing, we found EPA restructured the gut microbiota in a time-dependent manner but did not lower the levels of key Gram-negative bacteria. Interestingly, EPA robustly increased the abundance of the Gram-negative Akkermansia muciniphila, which controls glucose homeostasis. Finally, predictive functional profiling of microbial communities revealed EPA-mediated reversal of high fat diet-associated changes in a wide range of genes related to pathways such as Th-17 cell differentiation and PI3K-Akt signaling. Collectively, these results show that EPA ethyl esters prevent some of the deleterious effects of a high fat diet in female mice, which may be mediated mechanistically through 8-HEPE and the upregulation of intestinal Akkermansia muciniphila.Entities:
Keywords: Lipidomics; Microbial; N-3 polyunsaturated fatty acids; bacteria
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Year: 2021 PMID: 34619367 PMCID: PMC8627244 DOI: 10.1016/j.bbalip.2021.159059
Source DB: PubMed Journal: Biochim Biophys Acta Mol Cell Biol Lipids ISSN: 1388-1981 Impact factor: 4.698