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High Resolution Whole Mount In Situ Hybridization within Zebrafish Embryos to Study Gene Expression and Function
Published on: October 20, 2013
Zebrafish usp39 mutation leads to rb1 mRNA splicing defect and pituitary lineage expansion
Yesenia Ríos1, Shlomo Melmed, Shuo Lin
1Department of Molecular, Cell, and Developmental Biology, University of California Los Angeles, Los Angeles, California, United States of America.
Abstract:
Loss of retinoblastoma (Rb) tumor suppressor function is associated with human malignancies. Molecular and genetic mechanisms responsible for tumorigenic Rb downregulation are not fully defined. Through a forward genetic screen and positional cloning, we identified and characterized a zebrafish ubiquitin specific peptidase 39 (usp39) mutation, the yeast and human homolog of which encodes a component of RNA splicing machinery. Zebrafish usp39 mutants exhibit microcephaly and adenohypophyseal cell lineage expansion without apparent changes in major hypothalamic hormonal and regulatory signals. Gene expression profiling of usp39 mutants revealed decreased rb1 and increased e2f4, rbl2 (p130), and cdkn1a (p21) expression. Rb1 mRNA overexpression, or antisense morpholino knockdown of e2f4, partially reversed embryonic pituitary expansion in usp39 mutants. Analysis of pre-mRNA splicing status of critical cell cycle regulators showed misspliced Rb1 pre-mRNA resulting in a premature stop codon. These studies unravel a novel mechanism for rb1 regulation by a neuronal mRNA splicing factor, usp39. Zebrafish usp39 regulates embryonic pituitary homeostasis by targeting rb1 and e2f4 expression, respectively, contributing to increased adenohypophyseal sensitivity to these altered cell cycle regulators. These results provide a mechanism for dysregulated rb1 and e2f4 pathways that may result in pituitary tumorigenesis.
Insights
A zebrafish usp39 mutation disrupts RNA splicing, affecting retinoblastoma (Rb) protein levels and causing pituitary growth. This reveals a new mechanism linking RNA splicing to tumor suppressor regulation and pituitary homeostasis.
Area of Science:
- Genetics
- Molecular Biology
- Developmental Biology
Background:
- Loss of retinoblastoma (Rb) tumor suppressor function is linked to human cancers.
- The molecular mechanisms driving Rb downregulation in tumors are not fully understood.
Purpose of the Study:
- To identify genetic factors regulating retinoblastoma (Rb) tumor suppressor function.
- To investigate the role of ubiquitin specific peptidase 39 (usp39) in pituitary development and tumorigenesis.
Main Methods:
- Forward genetic screen and positional cloning in zebrafish to identify usp39 mutants.
- Gene expression profiling and pre-mRNA splicing analysis.
- Zebrafish model for studying pituitary development and cell cycle regulation.
Main Results:
- Zebrafish usp39 mutants display microcephaly and pituitary cell expansion.
- Mutants show decreased retinoblastoma 1 (rb1) and increased e2f4, rbl2 (p130), and cdkn1a (p21) expression.
- Missplicing of Rb1 pre-mRNA leads to premature stop codons, impacting Rb protein levels.
Conclusions:
- Zebrafish usp39 acts as a neuronal mRNA splicing factor regulating Rb1 and e2f4.
- Disruption of usp39 impacts pituitary homeostasis by altering cell cycle regulator expression.
- This pathway may contribute to pituitary tumorigenesis through dysregulated Rb and e2f4 signaling.

