SOX9 in biliary atresia: New insight for fibrosis progression

Hepatobiliary and Pancreatic Diseases International - Tập 20 - Trang 154-162 - 2021
Hanaa Ahmed El-Araby1, Magdy Anwar Saber1, Noha Mohamed Radwan1, Doha Maher Taie2, Nermin Mohamed Adawy1, Ahmad Mohamed Sira1
1Department of Pediatric Hepatology, Gastroenterology, and Nutrition, National Liver Institute, Menoufia University, 32511 Shebin El-koom, Menoufia, Egypt
2Department of Pathology, National Liver Institute, Menoufia University, 32511, Shebin El-koom, Menoufia, Egypt

Tài liệu tham khảo

Wildhaber, 2012, Biliary atresia: 50 years after the first kasai, ISRN Surg, 2012, 10.5402/2012/132089 Roskams, 2004, Nomenclature of the finer branches of the biliary tree: canals, ductules, and ductular reactions in human livers, Hepatology, 39, 1739, 10.1002/hep.20130 Russo, 2016, Key histopathologic features of liver biopsies that distinguish biliary atresia from other causes of infantile cholestasis and their correlation with outcome: a multicenter study, Am J Surg Pathol, 40, 1601, 10.1097/PAS.0000000000000755 Strazzabosco, 2005, Pathophysiology of cholangiopathies, J Clin Gastroenterol, 39, S90, 10.1097/01.mcg.0000155549.29643.ad Williams, 2014, Links between hepatic fibrosis, ductular reaction, and progenitor cell expansion, Gastroenterology, 146, 349, 10.1053/j.gastro.2013.11.034 Clouston, 2005, Fibrosis correlates with a ductular reaction in hepatitis C: roles of impaired replication, progenitor cells and steatosis, Hepatology, 41, 809, 10.1002/hep.20650 Delous, 2012, Sox9b is a key regulator of pancreaticobiliary ductal system development, PLoS Genet, 8, 10.1371/journal.pgen.1002754 Carpentier, 2011, Embryonic ductal plate cells give rise to cholangiocytes, periportal hepatocytes, and adult liver progenitor cells, Gastroenterology, 141, 1432, 10.1053/j.gastro.2011.06.049 Hanley, 2008, Ectopic SOX9 mediates extracellular matrix deposition characteristic of organ fibrosis, J Biol Chem, 283, 14063, 10.1074/jbc.M707390200 Suda, 2014, New insight into reactive ductular cells of biliary atresia provided by pathological assessment of SOX9, Pediatr Surg Int, 30, 481, 10.1007/s00383-014-3497-7 El-Guindi, 2014, Design and validation of a diagnostic score for biliary atresia, J Hepatol, 61, 116, 10.1016/j.jhep.2014.03.016 Palmer, 2014, Improved tissue sections for medical liver biopsies: a comparison of 16 vs 18 g biopsy needles using digital pathology, J Clin Pathol, 67, 415, 10.1136/jclinpath-2013-201954 Russo, 2011, Design and validation of the biliary atresia research consortium histologic assessment system for cholestasis in infancy, Clin Gastroenterol Hepatol, 9, 357, 10.1016/j.cgh.2011.01.003 Padoin, 2006, A comparison of wedge and needle hepatic biopsy in open bariatric surgery, Obes Surg, 16, 178, 10.1381/096089206775565159 Rawlins, 2013, Wedge and needle liver biopsies show discordant histopathology in morbidly obese patients undergoing Roux-en-Y gastric bypass surgery, Gastroenterol Rep (Oxf), 1, 51, 10.1093/gastro/got006 Roskams, 1998, Hepatic OV-6 expression in human liver disease and rat experiments: evidence for hepatic progenitor cells in man, J Hepatol, 29, 455, 10.1016/S0168-8278(98)80065-2 El-Araby, 2015, Hepatic progenitor cells in children with chronic hepatitis C: correlation with histopathology, viremia, and treatment response, Eur J Gastroenterol Hepatol, 27, 561, 10.1097/MEG.0000000000000329 Brunt, 2010, Hepatic progenitor cell proliferation and liver injury in α-1-antitrypsin deficiency, J Pediatr Gastroenterol Nutr, 51, 626, 10.1097/MPG.0b013e3181e7ff55 Bezerra, 2014, Use of corticosteroids after hepatoportoenterostomy for bile drainage in infants with biliary atresia: the START randomized clinical trial, JAMA, 311, 1750, 10.1001/jama.2014.2623 Priester, 2010, Involvement of cholangiocyte proliferation in biliary fibrosis, World J Gastrointest Pathophysiol, 1, 30, 10.4291/wjgp.v1.i2.30 El-Araby, 2020, Temporal histopathological changes in biliary atresia: A perspective for rapid fibrosis progression, Ann Hepatol Kim, 2010, Assessment of liver fibrosis and cirrhosis by aspartate aminotransferase-to-platelet ratio index in children with biliary atresia, J Pediatr Gastroenterol Nutr, 51, 198, 10.1097/MPG.0b013e3181da1d98 Rastogi, 2009, Histopathological features and accuracy for diagnosing biliary atresia by prelaparotomy liver biopsy in developing countries, J Gastroenterol Hepatol, 24, 97, 10.1111/j.1440-1746.2008.05737.x Zhang, 2016, Hepatic pathology of biliary atresia: a new comprehensive evaluation method using liver biopsy, Turk J Gastroenterol, 27, 257, 10.5152/tjg.2016.15316 Moyer, 2010, Staging of biliary atresia at diagnosis by molecular profiling of the liver, Genome Med, 2, 33, 10.1186/gm154 Kuo, 2015, Immunohistochemical characterization of the regenerative compartment in biliary atresia: a comparison between Kasai procedure and transplant cases, Hum Pathol, 46, 1633, 10.1016/j.humpath.2015.07.003 Pozniak, 2017, Taurocholate induces biliary differentiation of liver progenitor cells causing hepatic stellate cell chemotaxis in the ductular reaction: role in pediatric cystic fibrosis liver disease, Am J Pathol, 187, 2744, 10.1016/j.ajpath.2017.08.024 Grappone, 1999, Expression of platelet-derived growth factor in newly formed cholangiocytes during experimental biliary fibrosis in rats, J Hepatol, 31, 100, 10.1016/S0168-8278(99)80169-X Fabris, 2007, Analysis of liver repair mechanisms in Alagille syndrome and biliary atresia reveals a role for notch signaling, Am J Pathol, 171, 641, 10.2353/ajpath.2007.070073 Zhang, 2016, Inhibition of notch signaling pathway prevents cholestatic liver fibrosis by decreasing the differentiation of hepatic progenitor cells into cholangiocytes, Lab Invest, 96, 350, 10.1038/labinvest.2015.149 Darwiche, 2010, Biology of the adult hepatic progenitor cell: "ghosts in the machine, Prog Mol Biol Transl Sci, 97, 229, 10.1016/B978-0-12-385233-5.00008-8 Mavila, 2014, Expansion of prominin-1-expressing cells in association with fibrosis of biliary atresia, Hepatology, 60, 941, 10.1002/hep.27203 Lowes, 1999, Oval cell numbers in human chronic liver diseases are directly related to disease severity, Am J Pathol, 154, 537, 10.1016/S0002-9440(10)65299-6 Pritchett, 2012, Osteopontin is a novel downstream target of SOX9 with diagnostic implications for progression of liver fibrosis in humans, Hepatology, 56, 1108, 10.1002/hep.25758