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Yeast As a Chassis for Developing Functional Assays to Study Human P53
Published on: August 4, 2019
E2F7, a novel target, is up-regulated by p53 and mediates DNA damage-dependent transcriptional repression
Luis A Carvajal1, Pierre-Jacques Hamard, Crystal Tonnessen
1Department of Oncological Sciences, Mount Sinai School of Medicine, New York, New York 10029, USA.
Abstract:
The p53 tumor suppressor protein is a transcription factor that exerts its effects on the cell cycle via regulation of gene expression. Although the mechanism of p53-dependent transcriptional activation has been well-studied, the molecular basis for p53-mediated repression has been elusive. The E2F family of transcription factors has been implicated in regulation of cell cycle-related genes, with E2F6, E2F7, and E2F8 playing key roles in repression. In response to cellular DNA damage, E2F7, but not E2F6 or E2F8, is up-regulated in a p53-dependent manner, with p53 being sufficient to increase expression of E2F7. Indeed, p53 occupies the promoter of the E2F7 gene after genotoxic stress, consistent with E2F7 being a novel p53 target. Ablation of E2F7 expression abrogates p53-dependent repression of a subset of its targets, including E2F1 and DHFR, in response to DNA damage. Furthermore, E2F7 occupancy of the E2F1 and DHFR promoters is detected, and expression of E2F7 is sufficient to inhibit cell proliferation. Taken together, these results show that p53-dependent transcriptional up-regulation of its target, E2F7, leads to repression of relevant gene expression. In turn, this E2F7-dependent mechanism contributes to p53-dependent cell cycle arrest in response to DNA damage.
Insights
The tumor suppressor p53 protein up-regulates E2F7, a transcription factor that represses gene expression. This p53-E2F7 pathway mediates cell cycle arrest following DNA damage.
Area of Science:
- Molecular Biology
- Cell Biology
- Genetics
Background:
- The p53 tumor suppressor protein regulates the cell cycle through gene expression.
- Mechanisms of p53-mediated transcriptional repression are not fully understood.
- The E2F family, particularly E2F6, E2F7, and E2F8, are involved in repressing cell cycle genes.
Purpose of the Study:
- To elucidate the molecular basis of p53-mediated transcriptional repression.
- To identify novel p53 target genes involved in repression.
- To investigate the role of E2F family members in p53-dependent repression.
Main Methods:
- Analysis of E2F7 expression in response to DNA damage.
- Chromatin immunoprecipitation to detect p53 and E2F7 binding to promoters.
- Gene silencing (ablation) of E2F7 to assess its role in p53-mediated repression.
- Cell proliferation assays.
Main Results:
- E2F7 is upregulated in a p53-dependent manner following DNA damage.
- p53 directly binds to the E2F7 promoter, identifying E2F7 as a p53 target.
- E2F7 ablation impairs p53-dependent repression of target genes like E2F1 and DHFR.
- E2F7 expression inhibits cell proliferation.
Conclusions:
- p53 transcriptionally upregulates E2F7, which then represses specific gene targets.
- This p53-E2F7 regulatory axis is a key mechanism for p53-dependent cell cycle arrest after DNA damage.
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