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Reverse Yeast Two-hybrid System to Identify Mammalian Nuclear Receptor Residues that Interact with Ligands and/or Antagonists
Published on: November 15, 2013
Iterative use of nuclear receptor Nr5a2 regulates multiple stages of liver and pancreas development
Sahar Nissim1, Olivia Weeks2, Jared C Talbot3
1Gastroenterology Division, Brigham and Women's Hospital, Harvard Medical School, Boston, MA 02115, USA; Genetics Division, Brigham and Women's Hospital, Harvard Medical School, Boston, MA 02115, USA; Dana-Farber Cancer Institute, Boston, MA 02115, USA.
Abstract:
The stepwise progression of common endoderm progenitors into differentiated liver and pancreas organs is regulated by a dynamic array of signals that are not well understood. The nuclear receptor subfamily 5, group A, member 2 gene nr5a2, also known as Liver receptor homolog-1 (Lrh-1) is expressed in several tissues including the developing liver and pancreas. Here, we interrogate the role of Nr5a2 at multiple developmental stages using genetic and chemical approaches and uncover novel pleiotropic requirements during zebrafish liver and pancreas development. Zygotic loss of nr5a2 in a targeted genetic null mutant disrupted the development of the exocrine pancreas and liver, while leaving the endocrine pancreas intact. Loss of nr5a2 abrogated exocrine pancreas markers such as trypsin, while pancreas progenitors marked by ptf1a or pdx1 remained unaffected, suggesting a role for Nr5a2 in regulating pancreatic acinar cell differentiation. In the developing liver, Nr5a2 regulates hepatic progenitor outgrowth and differentiation, as nr5a2 mutants exhibited reduced hepatoblast markers hnf4α and prox1 as well as differentiated hepatocyte marker fabp10a. Through the first in vivo use of Nr5a2 chemical antagonist Cpd3, the iterative requirement for Nr5a2 for exocrine pancreas and liver differentiation was temporally elucidated: chemical inhibition of Nr5a2 function during hepatopancreas progenitor specification was sufficient to disrupt exocrine pancreas formation and enhance the size of the embryonic liver, suggesting that Nr5a2 regulates hepatic vs. pancreatic progenitor fate choice. Chemical inhibition of Nr5a2 at a later time during pancreas and liver differentiation was sufficient to block the formation of mature acinar cells and hepatocytes. These findings define critical iterative and pleiotropic roles for Nr5a2 at distinct stages of pancreas and liver organogenesis, and provide novel perspectives for interpreting the role of Nr5a2 in disease.
Insights
The gene Nr5a2 (Liver receptor homolog-1) is crucial for zebrafish liver and pancreas development. Loss of Nr5a2 disrupts exocrine pancreas and liver differentiation, impacting organogenesis and cell fate decisions.
Area of Science:
- Developmental biology
- Molecular genetics
- Organogenesis
Background:
- Liver and pancreas organ development from endoderm progenitors involves complex signaling pathways.
- The nuclear receptor subfamily 5, group A, member 2 gene, Nr5a2 (Liver receptor homolog-1), is expressed in developing liver and pancreas.
Purpose of the Study:
- To investigate the pleiotropic roles of Nr5a2 during zebrafish liver and pancreas development across multiple stages.
- To elucidate the temporal requirements of Nr5a2 in organogenesis using genetic and chemical approaches.
Main Methods:
- Generation of zebrafish nr5a2 genetic null mutants.
- In vivo chemical inhibition of Nr5a2 using antagonist Cpd3.
- Analysis of gene expression markers for pancreas and liver progenitors and differentiated cells (e.g., trypsin, ptf1a, pdx1, hnf4α, prox1, fabp10a).
Main Results:
- Zygotic loss of nr5a2 disrupted exocrine pancreas and liver development, but not endocrine pancreas.
- Nr5a2 is essential for pancreatic acinar cell differentiation and hepatic progenitor outgrowth.
- Chemical inhibition revealed Nr5a2's role in regulating progenitor fate choice and later differentiation of hepatocytes and acinar cells.
Conclusions:
- Nr5a2 plays critical, iterative, and pleiotropic roles at distinct stages of liver and pancreas organogenesis.
- Findings provide insights into Nr5a2's function in organ development and potential implications in disease.
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