Prox1 ablation in hepatic progenitors causes defective hepatocyte specification and increases biliary cell commitment

Author:

Seth Asha1,Ye Jianming1,Yu Nanjia1,Guez Fanny1,Bedford David C.2,Neale Geoffrey A.3,Cordi Sabine4,Brindle Paul K.2,Lemaigre Frederic P.4,Kaestner Klaus H.5,Sosa-Pineda Beatriz1

Affiliation:

1. Department of Genetics, St Jude Children’s Research Hospital, Memphis, TN 38105, USA.

2. Department of Biochemistry, St Jude Children’s Research Hospital, Memphis, TN 38105, USA.

3. Hartwell Center for Bioinformatics and Biotechnology, St Jude Children’s Research Hospital, Memphis, TN 38105, USA.

4. de Duve Institute, Universite Catholique de Louivan, 1200 Brussels, Belgium.

5. Department of Genetics, University of Pennsylvania, Philadelphia, PA 19104, USA.

Abstract

The liver has multiple functions that preserve homeostasis. Liver diseases are debilitating, costly and often result in death. Elucidating the developmental mechanisms that establish the liver’s architecture or generate the cellular diversity of this organ should help advance the prevention, diagnosis and treatment of hepatic diseases. We previously reported that migration of early hepatic precursors away from the gut epithelium requires the activity of the homeobox gene Prox1. Here, we show that Prox1 is a novel regulator of cell differentiation and morphogenesis during hepatogenesis. Prox1 ablation in bipotent hepatoblasts dramatically reduced the expression of multiple hepatocyte genes and led to very defective hepatocyte morphogenesis. As a result, abnormal epithelial structures expressing hepatocyte and cholangiocyte markers or resembling ectopic bile ducts developed in the Prox1-deficient liver parenchyma. By contrast, excessive commitment of hepatoblasts into cholangiocytes, premature intrahepatic bile duct morphogenesis, and biliary hyperplasia occurred in periportal areas of Prox1-deficient livers. Together, these abnormalities indicate that Prox1 activity is necessary to correctly allocate cell fates in liver precursors. These results increase our understanding of differentiation anomalies in pathological conditions and will contribute to improving stem cell protocols in which differentiation is directed towards hepatocytes and cholangiocytes.

Publisher

The Company of Biologists

Subject

Developmental Biology,Molecular Biology

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