Hepatic Notch2 deficiency leads to bile duct agenesis perinatally and secondary bile duct formation after weaning

被引:29
作者
Falix, Farah A. [1 ,2 ,3 ]
Weeda, Viola B. [1 ,2 ,3 ]
Labruyere, Wilhelmina T. [1 ]
Poncy, Alexis [4 ,5 ]
de Waart, Dirk R. [1 ]
Hakvoort, Theodorus B. M. [1 ]
Lemaigre, Frederic [4 ,5 ]
Gaemers, Ingrid C. [1 ]
Aronson, Daniel C. [2 ,3 ]
Lamers, Wouter H. [1 ]
机构
[1] Acad Med Ctr, Tytgat Inst Liver & Intestinal Reasearch, NL-1105 BK Amsterdam, Netherlands
[2] Acad Med Ctr, Emma Childrens Hosp AMC, NL-1105 BK Amsterdam, Netherlands
[3] Acad Med Ctr, Pediat Surg Ctr Amsterdam, NL-1105 BK Amsterdam, Netherlands
[4] Catholic Univ Louvain, B-1200 Brussels, Belgium
[5] Duve Inst, B-1200 Brussels, Belgium
关键词
Notch2; Liver; Ductal plate; Cholangiocytes; Ductular reaction; HUMAN BILIARY SYSTEM; TRANSCRIPTION FACTOR; LIVER DEVELOPMENT; RAT-LIVER; HEPATOCYTES; GROWTH; DIFFERENTIATION; CHOLANGIOCYTES; MORPHOGENESIS; GENERATION;
D O I
10.1016/j.ydbio.2014.10.002
中图分类号
Q [生物科学];
学科分类号
07 ; 0710 ; 09 ;
摘要
Notch signaling plays an acknowledged role in bile-duct development, but its involvement in cholangiocyte-fate determination remains incompletely understood. We investigated the effects of early Notch2 deletion in Notch2(fl/fl)/Alfp-Cre(tg/-) ("Notch2-cKO") and Notch2(fl/fl)/Alfp-Cre(-/-) ("control") mice. Fetal and neonatal Notch2-cKO livers were devoid of cytokeratin19 (CK19)-, Dolichos-biflorus agglutinin (DBA)-, and SOX9-positive ductal structures, demonstrating absence of prenatal cholangiocyte differentiation. Despite extensive cholestatic hepatocyte necrosis and growth retardation, mortality was only 15%. Unexpectedly, a slow process of secondary cholangiocyte differentiation and bile-duct formation was initiated around weaning that histologically resembled the ductular reaction. Newly formed ducts varied from rare and non-connected, to multiple, disorganized tubular structures that connected to the extrahepatic bile ducts. Jaundice had disappeared in 30% of Notch2-cKO mice by 6 months. The absence of NOTCH2 protein in postnatally differentiating cholangiocyte nuclei of Notch2-cKO mice showed that these cells had not originated from non-recombined precursor cells. Notch2 and Hnf6 mRNA levels were permanently decreased in Notch2-cKO livers. Perinatally, Foxal, Foxa2, Hhex, Hnfl beta, Cebp alpha and Sox9 mRNA levels were all significantly lower in Notch2-cKO than control mice, but all except Foxa2 returned to normal or increased levels after weaning, coincident with the observed secondary bile-duct formation. Interestingly, Hhex and Sox9 mRNA levels remained elevated in icteric 6 months old Notch2-cKOs, but decreased to control levels in non-icteric Notch2-cKOs, implying a key role in secondary bile-duct formation. Conclusion: Cholangiocyte differentiation becomes progressively less dependent on NOTCH2 signaling with age, suggesting that ductal-plate formation is dependent on NOTCH2, but subsequent cholangiocyte differentiation is not. (C) 2014 Elsevier Inc. All rights reserved.
引用
收藏
页码:201 / 213
页数:13
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