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Yeast As a Chassis for Developing Functional Assays to Study Human P53
Published on: August 4, 2019
p53 inhibits SP7/Osterix activity in the transcriptional program of osteoblast differentiation
Natalia Artigas1, Beatriz Gámez1, Mónica Cubillos-Rojas1
1Departament de Ciències Fisiològiques, Universitat de Barcelona, IDIBELL, L'Hospitalet de Llobregat, Spain.
Abstract:
Osteoblast differentiation is achieved by activating a transcriptional network in which Dlx5, Runx2 and Osx/SP7 have fundamental roles. The tumour suppressor p53 exerts a repressive effect on bone development and remodelling through an unknown mechanism that inhibits the osteoblast differentiation programme. Here we report a physical and functional interaction between Osx and p53 gene products. Physical interaction was found between overexpressed proteins and involved a region adjacent to the OSX zinc fingers and the DNA-binding domain of p53. This interaction results in a p53-mediated repression of OSX transcriptional activity leading to a downregulation of the osteogenic programme. Moreover, we show that p53 is also able to repress key osteoblastic genes in Runx2-deficient osteoblasts. The ability of p53 to suppress osteogenesis is independent of its DNA recognition ability but requires a native conformation of p53, as a conformational missense mutant failed to inhibit OSX. Our data further demonstrates that p53 inhibits OSX binding to their responsive Sp1/GC-rich sites in the promoters of their osteogenic target genes, such as IBSP or COL1A1. Moreover, p53 interaction to OSX sequesters OSX from binding to DLX5. This competition blocks the ability of OSX to act as a cofactor of DLX5 to activate homeodomain-containing promoters. Altogether, our data support a model wherein p53 represses OSX-DNA binding and DLX5-OSX interaction, and thereby deregulates the osteogenic transcriptional network. This mechanism might have relevant roles in bone pathologies associated to osteosarcomas and ageing.
Insights
The tumor suppressor p53 physically interacts with Osx, repressing osteoblast differentiation by inhibiting Osx
Area of Science:
- Molecular Biology
- Cell Biology
- Biochemistry
Background:
- Osteoblast differentiation relies on a transcriptional network involving Dlx5, Runx2, and Osx/SP7.
- The tumor suppressor p53 inhibits bone development and remodeling via an uncharacterized mechanism.
- Understanding p53's role in osteogenesis is crucial for bone pathology research.
Purpose of the Study:
- To elucidate the mechanism by which p53 represses osteoblast differentiation.
- To investigate the interaction between p53 and Osx (SP7).
- To determine how p53 affects the osteogenic transcriptional network.
Main Methods:
- Co-immunoprecipitation to detect physical interaction between p53 and Osx.
- Reporter gene assays to assess transcriptional activity.
- Analysis of gene promoter binding and protein-protein interactions.
- Use of wild-type and mutant p53 proteins.
Main Results:
- p53 physically interacts with Osx, inhibiting its transcriptional activity.
- p53 represses osteogenic genes independently of DNA binding but requires native conformation.
- p53 inhibits Osx binding to GC-rich promoter sites and its interaction with DLX5.
- This interaction disrupts the DLX5-Osx coactivation of osteogenic promoters.
Conclusions:
- p53 represses osteoblast differentiation by inhibiting Osx DNA binding and DLX5-Osx complex formation.
- This mechanism deregulates the osteogenic transcriptional network.
- The findings suggest a role for p53 in bone pathologies like osteosarcomas and aging.
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