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Bile acids: regulation of synthesis

Journal of Lipid Research · 2009 · Vol. 50(10) · pp. 1955–1966
John Y.L. Chiang

Abstract

Bile acids are physiological detergents that generate bile flow and facilitate intestinal absorption and transport of lipids, nutrients, and vitamins. Bile acids also are signaling molecules and inflammatory agents that rapidly activate nuclear receptors and cell signaling pathways that regulate lipid, glucose, and energy metabolism. The enterohepatic circulation of bile acids exerts important physiological functions not only in feedback inhibition of bile acid synthesis but also in control of whole-body lipid homeostasis. In the liver, bile acids activate a nuclear receptor, farnesoid X receptor (FXR), that induces an atypical nuclear receptor small heterodimer partner, which subsequently inhibits nuclear receptors, liver-related homolog-1, and hepatocyte nuclear factor 4alpha and results in inhibiting transcription of the critical regulatory gene in bile acid synthesis, cholesterol 7alpha-hydroxylase (CYP7A1). In the intestine, FXR induces an intestinal hormone, fibroblast growth factor 15 (FGF15; or FGF19 in human), which activates hepatic FGF receptor 4 (FGFR4) signaling to inhibit bile acid synthesis. However, the mechanism by which FXR/FGF19/FGFR4 signaling inhibits CYP7A1 remains unknown. Bile acids are able to induce FGF19 in human hepatocytes, and the FGF19 autocrine pathway may exist in the human livers. Bile acids and bile acid receptors are therapeutic targets for development of drugs for treatment of cholestatic liver diseases, fatty liver diseases, diabetes, obesity, and metabolic syndrome.

Epigenetics and DNA MethylationDrug Transport and Resistance MechanismsFibroblast Growth Factor ResearchFGF19Farnesoid X receptorG protein-coupled bile acid receptorCholesterol 7 alpha-hydroxylaseCYP8B1Bile acidEnterohepatic circulationNuclear receptorLiver receptor homolog-1Small heterodimer partner

MeSH terms

Receptor, Farnesoid X-ActivatedAnimalsBile Acids and SaltsCholesterol 7-alpha-HydroxylaseHumansModels, BiologicalSignal TransductionReceptors, Cytoplasmic and Nuclear
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