Microbiota-driven gut vascular barrier disruption is a prerequisite for non-alcoholic steatohepatitis development

[Display omitted] •During diet-induced dysbiosis the gut vascular barrier is disrupted.•Gut vascular barrier disruption is responsible for the translocation of bacteria or bacterial products systemically.•Inhibiting gut vascular barrier disruption prevents the development of non-alcoholic steatohepa...

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Veröffentlicht in:Journal of hepatology 2019-12, Vol.71 (6), p.1216-1228
Hauptverfasser: Mouries, Juliette, Brescia, Paola, Silvestri, Alessandra, Spadoni, Ilaria, Sorribas, Marcel, Wiest, Reiner, Mileti, Erika, Galbiati, Marianna, Invernizzi, Pietro, Adorini, Luciano, Penna, Giuseppe, Rescigno, Maria
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Sprache:eng
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Zusammenfassung:[Display omitted] •During diet-induced dysbiosis the gut vascular barrier is disrupted.•Gut vascular barrier disruption is responsible for the translocation of bacteria or bacterial products systemically.•Inhibiting gut vascular barrier disruption prevents the development of non-alcoholic steatohepatitis.•Obeticholic acid can control gut vascular barrier disruption both in a preventive and therapeutic way. Fatty liver disease, including non-alcoholic fatty liver (NAFLD) and steatohepatitis (NASH), has been associated with increased intestinal barrier permeability and translocation of bacteria or bacterial products into the blood circulation. In this study, we aimed to unravel the role of both intestinal barrier integrity and microbiota in NAFLD/NASH development. C57BL/6J mice were fed with high-fat diet (HFD) or methionine-choline-deficient diet for 1 week or longer to recapitulate aspects of NASH (steatosis, inflammation, insulin resistance). Genetic and pharmacological strategies were then used to modulate intestinal barrier integrity. We show that disruption of the intestinal epithelial barrier and gut vascular barrier (GVB) are early events in NASH pathogenesis. Mice fed HFD for only 1 week undergo a diet-induced dysbiosis that drives GVB damage and bacterial translocation into the liver. Fecal microbiota transplantation from HFD-fed mice into specific pathogen-free recipients induces GVB damage and epididymal adipose tissue enlargement. GVB disruption depends on interference with the WNT/β-catenin signaling pathway, as shown by genetic intervention driving β-catenin activation only in endothelial cells, preventing GVB disruption and NASH development. The bile acid analogue and farnesoid X receptor agonist obeticholic acid (OCA) drives β-catenin activation in endothelial cells. Accordingly, pharmacologic intervention with OCA protects against GVB disruption, both as a preventive and therapeutic agent. Importantly, we found upregulation of the GVB leakage marker in the colon of patients with NASH. We have identified a new player in NASH development, the GVB, whose damage leads to bacteria or bacterial product translocation into the blood circulation. Treatment aimed at restoring β-catenin activation in endothelial cells, such as administration of OCA, protects against GVB damage and NASH development. The incidence of fatty liver disease is reaching epidemic levels in the USA, with more than 30% of adults having NAFLD (non-alcoholic fatty liver disease),
ISSN:0168-8278
1600-0641
DOI:10.1016/j.jhep.2019.08.005