4.8 Article

Effects of In Utero PFOS Exposure on Epigenetics and Metabolism in Mouse Fetal Livers

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ENVIRONMENTAL SCIENCE & TECHNOLOGY
卷 57, 期 40, 页码 14892-14903

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AMER CHEMICAL SOC
DOI: 10.1021/acs.est.3c05207

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MS-imaging; whole-genome bisulfite sequencing; hepatokine; PPAR; AMPK; ChREBP; MIHA

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Prenatal exposure to PFOS increases the metabolic risk of fetuses and alters lipid and glucose metabolism in fetal livers. PFOS activates AMPK signaling and modulates the expression of PPARα and PPARγ downstream target genes, promoting fatty acid oxidation and lipogenesis, thus affecting the postnatal susceptibility of fetuses to metabolic challenges.
Prenatal exposure to perfluorooctanesulfonate (PFOS) increases fetus' metabolic risk; however, the investigation of the underlying mechanism is limited. In this study, pregnant mice in the gestational days (GD, 4.5-17.5) were exposed to PFOS (0.3 and 3 mu g/g of body weight). At GD 17.5, PFOS perturbed maternal lipid metabolism and upregulated metabolism-regulating hepatokines (Angptl4, Angptl8, and Selenop). Mass-spectrometry imaging and whole-genome bisulfite sequencing revealed, respectively, selective PFOS localization and deregulation of gene methylation in fetal livers, involved in inflammation, glucose, and fatty acid metabolism. PCR and Western blot analysis of lipid-laden fetal livers showed activation of AMPK signaling, accompanied by significant increases in the expression of glucose transporters (Glut2/4), hexose-phosphate sensors (Retsat and ChREBP), and the key glycolytic enzyme, pyruvate kinase (Pk) for glucose catabolism. Additionally, PFOS modulated the expression levels of PPAR alpha and PPAR gamma downstream target genes, which simultaneously stimulated fatty acid oxidation (Cyp4a14, Acot, and Acox) and lipogenesis (Srebp1c, Acaca, and Fasn). Using human normal hepatocyte (MIHA) cells, the underlying mechanism of PFOS-elicited nuclear translocation of ChREBP, associated with a fatty acid synthesizing pathway, was revealed. Our finding implies that in utero PFOS exposure altered the epigenetic landscape associated with dysregulation of fetal liver metabolism, predisposing postnatal susceptibility to metabolic challenges.

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