4.6 Article

Selective PPARδ agonist seladelpar suppresses bile acid synthesis by reducing hepatocyte CYP7A1 via the fibroblast growth factor 21 signaling pathway

期刊

JOURNAL OF BIOLOGICAL CHEMISTRY
卷 298, 期 7, 页码 -

出版社

ELSEVIER
DOI: 10.1016/j.jbc.2022.102056

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资金

  1. National Institutes of Health [R01 AA24726, R37 AA020703, U01 AA026939, U01 AA026939-04S1]
  2. Biomedical Laboratory Research & Development Service of the VA Office of Research and Development [BX004594]
  3. Biocodex Microbiota Foundation
  4. [R01DK101737]
  5. [U01AA022614]
  6. [R01DK099205]
  7. [R01DK111866]
  8. [R01AA028550]
  9. [U01AA018663]
  10. [U01AA029019]
  11. [R01DK091183]
  12. [R01DK09920]

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The study demonstrates that the PPAR delta agonist seladelpar reduces bile acid synthesis by inhibiting Cyp7a1 and regulating Fgf21.
Peroxisome proliferator-activated receptor delta (PPAR delta) agonists have been shown to exert beneficial effects in liver disease and reduce total bile acid levels. The mechanism(s) whereby PPAR delta agonism reduces bile acid levels are, however, unknown, and therefore the aim of the present study was to investigate the molecular pathways responsible for reducing bile acid synthesis in hepatocytes, following treatment with the selective PPAR delta agonist, seladelpar. We show that administration of seladelpar to WT mice repressed the liver expression of cholesterol 7 alpha-hydroxylase (Cyp7a1), the rate-limiting enzyme for bile acid synthesis, and decreased plasma 7 alpha-hydroxy-4-cholesten-3-one (C4), a freely diffusible metabolite downstream of Cyp7a1. In primary mouse hepatocytes, seladelpar significantly reduced the expression of Cyp7a1 independent of the nuclear bile acid receptor, Farnesoid X receptor. In addition, seladelpar upregulated fibroblast growth factor 21 (Fgf21) in mouse liver, serum, and in cultured hepatocytes. We demonstrate that recombinant Fgf21 protein activated the cJun N-terminal kinase (JNK) signaling pathway and repressed Cyp7a1 gene expression in primary hepatocytes. The suppressive effect of seladelpar on Cyp7a1 expression was blocked by a JNK inhibitor as well as in the absence of Fgf21, indicating that Fgf21 plays an indispensable role in PPAR delta-mediated down-regulation of Cyp7a1. Finally, reduction of CYP7A1 expression by seladelpar was confirmed in primary human hepatocytes. In conclusion, we show that seladelpar reduces bile acid synthesis via an FGF21-dependent mechanism that signals at least partially through JNK to repress CYP7A1.

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