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Yeast As a Chassis for Developing Functional Assays to Study Human P53
Published on: August 4, 2019
Wild type p53 transcriptionally represses the SALL2 transcription factor under genotoxic stress
Carlos Farkas1, Carla P Martins, David Escobar
1Departamento de Bioquímica y Biología Molecular, Facultad de Ciencias Biológicas, Universidad de Concepción, Concepción, Chile.
Abstract:
SALL2- a member of the Spalt gene family- is a poorly characterized transcription factor found deregulated in various cancers, which suggests it plays a role in the disease. We previously identified SALL2 as a novel interacting protein of neurotrophin receptors and showed that it plays a role in neuronal function, which does not necessarily explain why or how SALL2 is deregulated in cancer. Previous evidences indicate that SALL2 gene is regulated by the WT1 and AP4 transcription factors. Here, we identified SALL2 as a novel downstream target of the p53 tumor suppressor protein. Bioinformatic analysis of the SALL2 gene revealed several putative p53 half sites along the promoter region. Either overexpression of wild-type p53 or induction of the endogenous p53 by the genotoxic agent doxorubicin repressed SALL2 promoter activity in various cell lines. However R175H, R249S, and R248W p53 mutants, frequently found in the tumors of cancer patients, were unable to repress SALL2 promoter activity, suggesting that p53 specific binding to DNA is important for the regulation of SALL2. Electrophoretic mobility shift assay demonstrated binding of p53 to one of the identified p53 half sites in the Sall2 promoter, and chromatin immunoprecipitation analysis confirmed in vivo interaction of p53 with the promoter region of Sall2 containing this half site. Importantly, by using a p53ER (TAM) knockin model expressing a variant of p53 that is completely dependent on 4-hydroxy-tamoxifen for its activity, we show that p53 activation diminished SALL2 RNA and protein levels during genotoxic cellular stress in primary mouse embryo fibroblasts (MEFs) and radiosensitive tissues in vivo. Thus, our finding indicates that p53 represses SALL2 expression in a context-specific manner, adding knowledge to the understanding of SALL2 gene regulation, and to a potential mechanism for its deregulation in cancer.
Insights
The tumor suppressor p53 (also known as TP53) directly represses the SALL2 gene, a transcription factor implicated in cancer. This regulation is crucial for understanding SALL2
Area of Science:
- Molecular Biology
- Cancer Biology
- Genetics
Background:
- SALL2, a Spalt gene family member, is a transcription factor implicated in cancer due to its deregulation.
- Previous research linked SALL2 to neurotrophin receptors and neuronal function, but its role in cancer remained unclear.
- WT1 and AP4 transcription factors were previously known regulators of SALL2.
Purpose of the Study:
- To identify novel regulators of SALL2, particularly in the context of cancer.
- To investigate the relationship between the p53 tumor suppressor protein and SALL2 expression.
- To elucidate the mechanism by which p53 regulates SALL2.
Main Methods:
- Bioinformatic analysis of the SALL2 promoter for p53 binding sites.
- Reporter assays (luciferase) to assess SALL2 promoter activity.
- Electrophoretic mobility shift assays (EMSA) and chromatin immunoprecipitation (ChIP) to confirm p53 binding.
- In vitro and in vivo studies using p53 activation models (doxorubicin, p53ER(TAM) knockin).
Main Results:
- SALL2 was identified as a novel downstream target of the p53 tumor suppressor.
- p53 directly binds to the SALL2 promoter and represses its activity.
- Cancer-associated p53 mutants (R175H, R249S, R248W) failed to repress SALL2, indicating the importance of p53 DNA-binding.
- p53 activation led to decreased SALL2 RNA and protein levels under genotoxic stress in cell lines and in vivo.
Conclusions:
- p53 acts as a repressor of SALL2 expression.
- p53-mediated repression of SALL2 occurs in a context-specific manner, particularly during genotoxic stress.
- This finding provides insight into SALL2 gene regulation and a potential mechanism for its deregulation in cancer.
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