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Compensatory hepatic adaptation accompanies permanent absence of intrahepatic biliary network due to YAP1 loss in liver progenitors

View ORCID ProfileLaura M. Molina, Junjie Zhu, Qin Li, Tirthadipa Pradhan-Sundd, Khaled Sayed, Nathaniel Jenkins, Ravi Vats, Sungjin Ko, Shikai Hu, Minakshi Poddar, Sucha Singh, Junyan Tao, Prithu Sundd, Aatur Singhi, Simon Watkins, Xiaochao Ma, Panayiotis V. Benos, Andrew Feranchak, Kari Nejak-Bowen, Alan Watson, Aaron Bell, View ORCID ProfileSatdarshan P. Monga
doi: https://doi.org/10.1101/2020.10.21.349159
Laura M. Molina
1Medical Scientist Training Program, University of Pittsburgh School of Medicine, Pittsburgh, PA, USA
2Division of Experimental Pathology, Department of Pathology, University of Pittsburgh School of Medicine, Pittsburgh, PA, USA
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  • ORCID record for Laura M. Molina
Junjie Zhu
3Department of Pharmaceutical Sciences and Center for Pharmacogenetics, University of Pittsburgh School of Pharmacy, Pittsburgh, PA, USA
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Qin Li
4Division of Gastroenterology, Hepatology, and Nutrition, Department of Pediatrics, University of Pittsburgh School of Medicine and UPMC, Pittsburgh, PA, USA
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Tirthadipa Pradhan-Sundd
5Division of Hematology/Oncology, Department of Medicine, University of Pittsburgh School of Medicine and UPMC, Pittsburgh, PA, USA
6Pittsburgh Liver Research Center, University of Pittsburgh and UPMC, Pittsburgh, PA, USA
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Khaled Sayed
7Department of Computational and Systems Biology, University of Pittsburgh, 3420 Forbes Ave, Pittsburgh, PA 15213, USA
8Biomedical Engineering and Systems, Faculty of Engineering, Cairo University, Giza, Egypt
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Nathaniel Jenkins
9Center for Biologic Imaging, University of Pittsburgh, Pittsburgh, PA, USA
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Ravi Vats
5Division of Hematology/Oncology, Department of Medicine, University of Pittsburgh School of Medicine and UPMC, Pittsburgh, PA, USA
10Department of Bioengineering, School of Engineering, University of Pittsburgh, Pittsburgh, PA, USA
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Sungjin Ko
2Division of Experimental Pathology, Department of Pathology, University of Pittsburgh School of Medicine, Pittsburgh, PA, USA
6Pittsburgh Liver Research Center, University of Pittsburgh and UPMC, Pittsburgh, PA, USA
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Shikai Hu
2Division of Experimental Pathology, Department of Pathology, University of Pittsburgh School of Medicine, Pittsburgh, PA, USA
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Minakshi Poddar
2Division of Experimental Pathology, Department of Pathology, University of Pittsburgh School of Medicine, Pittsburgh, PA, USA
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Sucha Singh
2Division of Experimental Pathology, Department of Pathology, University of Pittsburgh School of Medicine, Pittsburgh, PA, USA
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Junyan Tao
2Division of Experimental Pathology, Department of Pathology, University of Pittsburgh School of Medicine, Pittsburgh, PA, USA
6Pittsburgh Liver Research Center, University of Pittsburgh and UPMC, Pittsburgh, PA, USA
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Prithu Sundd
5Division of Hematology/Oncology, Department of Medicine, University of Pittsburgh School of Medicine and UPMC, Pittsburgh, PA, USA
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Aatur Singhi
11Division of Anatomic Pathology, Department of Pathology, University of Pittsburgh School of Medicine and UPMC, Pittsburgh, PA, USA
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Simon Watkins
9Center for Biologic Imaging, University of Pittsburgh, Pittsburgh, PA, USA
12Department of Cell Biology, University of Pittsburgh School of Medicine, Pittsburgh, PA, USA
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Xiaochao Ma
3Department of Pharmaceutical Sciences and Center for Pharmacogenetics, University of Pittsburgh School of Pharmacy, Pittsburgh, PA, USA
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Panayiotis V. Benos
7Department of Computational and Systems Biology, University of Pittsburgh, 3420 Forbes Ave, Pittsburgh, PA 15213, USA
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Andrew Feranchak
4Division of Gastroenterology, Hepatology, and Nutrition, Department of Pediatrics, University of Pittsburgh School of Medicine and UPMC, Pittsburgh, PA, USA
6Pittsburgh Liver Research Center, University of Pittsburgh and UPMC, Pittsburgh, PA, USA
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Kari Nejak-Bowen
2Division of Experimental Pathology, Department of Pathology, University of Pittsburgh School of Medicine, Pittsburgh, PA, USA
6Pittsburgh Liver Research Center, University of Pittsburgh and UPMC, Pittsburgh, PA, USA
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Alan Watson
9Center for Biologic Imaging, University of Pittsburgh, Pittsburgh, PA, USA
12Department of Cell Biology, University of Pittsburgh School of Medicine, Pittsburgh, PA, USA
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Aaron Bell
2Division of Experimental Pathology, Department of Pathology, University of Pittsburgh School of Medicine, Pittsburgh, PA, USA
6Pittsburgh Liver Research Center, University of Pittsburgh and UPMC, Pittsburgh, PA, USA
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Satdarshan P. Monga
2Division of Experimental Pathology, Department of Pathology, University of Pittsburgh School of Medicine, Pittsburgh, PA, USA
6Pittsburgh Liver Research Center, University of Pittsburgh and UPMC, Pittsburgh, PA, USA
13Division of Gastroenterology, Hepatology, and Nutrition, Department of Medicine, University of Pittsburgh School of Medicine and UPMC, Pittsburgh, PA, USA
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  • ORCID record for Satdarshan P. Monga
  • For correspondence: smonga@pitt.edu
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Summary

YAP1 regulates cell plasticity during liver injury, regeneration and cancer, but its role in liver development is unknown. YAP1 activity was detected in biliary cells and in cells at the hepato-biliary bifurcation in single-cell RNA-sequencing analysis of developing livers. Hepatoblast deletion of Yap1 led to no impairment in Notch-driven SOX9+ ductal plate formation, but prevented the formation of the abutting second layer of SOX9+ ductal cells, blocking the formation of a patent intrahepatic biliary tree. Intriguingly, the mice survived for 8 months with severe cholestatic injury and without any hepatocyte-to-biliary transdifferentiation. Ductular reaction in the perihilar region suggested extrahepatic biliary proliferation likely seeking the missing intrahepatic biliary network. Long-term survival of these mice occurred through hepatocyte adaptation via reduced metabolic and synthetic function including altered bile acid metabolism and transport. Overall, we show YAP1 as a key regulator of bile duct development while highlighting a profound adaptive capability of hepatocytes.

Competing Interest Statement

The authors have declared no competing interest.

Footnotes

  • Figure 4 revised to show more representative images. None of these changes are reflective of peer review comments.

  • https://www.ncbi.nlm.nih.gov/geo/query/acc.cgi?acc=GSE157777

Copyright 
The copyright holder for this preprint is the author/funder, who has granted bioRxiv a license to display the preprint in perpetuity. It is made available under a CC-BY-NC-ND 4.0 International license.
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Posted January 04, 2021.
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Compensatory hepatic adaptation accompanies permanent absence of intrahepatic biliary network due to YAP1 loss in liver progenitors
Laura M. Molina, Junjie Zhu, Qin Li, Tirthadipa Pradhan-Sundd, Khaled Sayed, Nathaniel Jenkins, Ravi Vats, Sungjin Ko, Shikai Hu, Minakshi Poddar, Sucha Singh, Junyan Tao, Prithu Sundd, Aatur Singhi, Simon Watkins, Xiaochao Ma, Panayiotis V. Benos, Andrew Feranchak, Kari Nejak-Bowen, Alan Watson, Aaron Bell, Satdarshan P. Monga
bioRxiv 2020.10.21.349159; doi: https://doi.org/10.1101/2020.10.21.349159
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Compensatory hepatic adaptation accompanies permanent absence of intrahepatic biliary network due to YAP1 loss in liver progenitors
Laura M. Molina, Junjie Zhu, Qin Li, Tirthadipa Pradhan-Sundd, Khaled Sayed, Nathaniel Jenkins, Ravi Vats, Sungjin Ko, Shikai Hu, Minakshi Poddar, Sucha Singh, Junyan Tao, Prithu Sundd, Aatur Singhi, Simon Watkins, Xiaochao Ma, Panayiotis V. Benos, Andrew Feranchak, Kari Nejak-Bowen, Alan Watson, Aaron Bell, Satdarshan P. Monga
bioRxiv 2020.10.21.349159; doi: https://doi.org/10.1101/2020.10.21.349159

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