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Published on: February 21, 2016
The Trp73 Mutant Mice: A Ciliopathy Model That Uncouples Ciliogenesis From Planar Cell Polarity
Margarita M Marques1, Javier Villoch-Fernandez2, Laura Maeso-Alonso2
1Departamento de Producción Animal, Laboratorio de Diferenciación Celular y Diseño de Modelos Celulares, Instituto de Desarrollo Ganadero y Sanidad Animal, Universidad de León, León, Spain.
Abstract:
p73 transcription factor belongs to one of the most important gene families in vertebrate biology, the p53-family. Trp73 gene, like the other family members, generates multiple isoforms named TA and DNp73, with different and, sometimes, antagonist functions. Although p73 shares many biological functions with p53, it also plays distinct roles during development. Trp73 null mice (p73KO from now on) show multiple phenotypes as gastrointestinal and cranial hemorrhages, rhinitis and severe central nervous system defects. Several groups, including ours, have revisited the apparently unrelated phenotypes observed in total p73KO and revealed a novel p73 function in the organization of ciliated epithelia in brain and trachea, but also an essential role as regulator of ependymal planar cell polarity. Unlike p73KO or TAp73KO mice, tumor-prone Trp53-/- mice (p53KO) do not present ependymal ciliary or planar cell polarity defects, indicating that regulation of ciliogenesis and PCP is a p73-specific function. Thus, loss of ciliary biogenesis and epithelial organization might be a common underlying cause of the diverse p73KO-phenotypes, highlighting Trp73 role as an architect of the epithelial tissue. In this review we would like to discuss the data regarding p73 role as regulator of ependymal cell ciliogenesis and PCP, supporting the view of the Trp73-mutant mice as a model that uncouples ciliogenesis from PCP and a possible model of human congenital hydrocephalus.
Insights
The transcription factor p73 is crucial for organizing ciliated epithelia and planar cell polarity, distinct from p53. Loss of p73 function leads to ciliogenesis defects and epithelial disorganization, potentially modeling human congenital hydrocephalus.
Area of Science:
- Developmental Biology
- Molecular Biology
- Cell Biology
Background:
- The p73 transcription factor, part of the p53-family, generates diverse isoforms (TA and DNp73) with distinct functions.
- While sharing roles with p53, p73 has unique developmental functions, and its absence in p73 knockout mice causes multiple severe phenotypes.
Purpose of the Study:
- To review the role of p73 in regulating ependymal cell ciliogenesis and planar cell polarity (PCP).
- To highlight the significance of p73-mutant mice as a model for uncoupling ciliogenesis from PCP and for studying congenital hydrocephalus.
Main Methods:
- Analysis of phenotypes in p73 knockout (p73KO) mice.
- Comparison of p73KO phenotypes with those of p53 knockout (p53KO) mice.
Main Results:
- p73 plays a critical role in the organization of ciliated epithelia in the brain and trachea.
- p73 is essential for regulating ependymal planar cell polarity.
- Unlike p53, p73 specifically regulates ciliogenesis and PCP, with loss leading to epithelial disorganization.
Conclusions:
- Loss of ciliary biogenesis and epithelial organization due to p73 deficiency may underlie diverse p73KO phenotypes.
- p73 acts as an architect of epithelial tissue, with its specific role in ciliogenesis and PCP being a key finding.
- p73-mutant mice offer a valuable model for understanding congenital hydrocephalus and the interplay between ciliogenesis and PCP.
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