About: Biliatresone is a research topic. Over the lifetime, 18 publications have been published within this topic receiving 368 citations. The topic is also known as: 2-[2-(2-hydroxyphenyl)-3-oxoprop-1-en-3-yl]-3-methoxy-4,5-methylenedioxyphenol.
TL;DR: Recent advances using gestational ultrasound and results of newborn BA screening with serum direct (conjugated) bilirubin that support a prenatal onset of biliary injury form the foundation for a future research agenda focused on identifying the environmental and host factor(s) that cause BA.
TL;DR: Redox stress as a critical contributing factor in biliatresone‐induced cholangiocyte injury is strongly supported and variations in intrinsic stress responses underlie the susceptibility profile, and insufficient antioxidant capacity of EHCs may be critical to early pathogenesis of human BA.
TL;DR: This review is based upon an invited lecture for the 52nd Annual Meeting of the British Association of Paediatric Surgeons, July 2015, and parallels drawn with two clinical variants thought to definitively have their origins in intrauterine life: Biliary Atresia Splenic Malformation syndrome (BASM) and Cystic Biliary atresia (CBA).
TL;DR: A novel pathway of cholangiocyte injury in a model of biliary atresia is presented, which is relevant to human BA and may suggest potential future therapeutics.
Abstract: Biliary atresia is a neonatal liver disease with extrahepatic bile duct obstruction and progressive liver fibrosis. The etiology and pathogenesis of the disease are unknown. We previously identified a plant toxin, biliatresone, responsible for biliary atresia in naturally-occurring animal models, that causes cholangiocyte destruction in in-vitro models. Decreases in reduced glutathione (GSH) mimic the effects of biliatresone, and agents that replenish cellular GSH ameliorate the effects of the toxin. The goals of this study were to define signaling pathways downstream of biliatresone that lead to cholangiocyte destruction and to determine their relationship to GSH. Using cholangiocyte culture and 3D cholangiocyte spheroid cultures, we found that biliatresone and decreases in GSH upregulated RhoU/Wrch1, a Wnt signaling family member, which then mediated an increase in Hey2 in the NOTCH signaling pathway, causing downregulation of the transcription factor Sox17. When these genes were up- or down-regulated, the biliatresone effect on spheroids was phenocopied, resulting in lumen obstruction. Biopsies of patients with biliary atresia demonstrated increased RhoU/Wrch1 and Hey2 expression in cholangiocytes. We present a novel pathway of cholangiocyte injury in a model of biliary atresia, which is relevant to human BA and may suggest potential future therapeutics.
TL;DR: It is shown that exposure of neonatal mice to the toxin biliatresone creates an animal model of biliary atresia, and decreased levels of glutathione may play a mechanistic role in the pathogenesis of liver fibrosis in bili atresone-induced experimental biliaryAtresia.