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Updated: Apr 28, 2026

Yeast As a Chassis for Developing Functional Assays to Study Human P53
Published on: August 4, 2019
p53-directed translational control can shape and expand the universe of p53 target genes
S Zaccara1, T Tebaldi2, C Pederiva1
1Laboratory of Transcriptional Networks, Centre for Integrative Biology, CIBIO, University of Trento, Trento, Italy.
Abstract:
The increasing number of genome-wide transcriptome analyses focusing on p53-induced cellular responses in many cellular contexts keeps adding to the already numerous p53-regulated transcriptional networks. To investigate post-transcriptional controls as an additional dimension of p53-directed gene expression responses, we performed a translatome analysis through polysomal profiling on MCF7 cells upon 16 hours of doxorubicin or nutlin-3a treatment. The comparison between the transcriptome and the translatome revealed a considerable level of uncoupling, characterized by genes whose transcription variations did not correlate with translation variations. Interestingly, uncoupled genes were associated with apoptosis, DNA and RNA metabolism and cell cycle functions, suggesting that post-transcriptional control can modulate classical p53-regulated responses. Furthermore, even for well-established p53 targets that were differentially expressed both at the transcriptional and translational levels, quantitative differences between the transcriptome, subpolysomal and polysomal RNAs were evident. As we searched mechanisms underlying gene expression uncoupling, we identified the p53-dependent modulation of six RNA-binding proteins, where hnRNPD (AUF1) and CPEB4 are direct p53 transcriptional targets, whereas SRSF1, DDX17, YBX1 and TARDBP are indirect targets (genes modulated preferentially in the subpolysomal or polysomal mRNA level) modulated at the translational level in a p53-dependent manner. In particular, YBX1 translation appeared to be reduced by p53 via two different mechanisms, one related to mTOR inhibition and the other to miR-34a expression. Overall, we established p53 as a master regulator of translational control and identified new p53-regulated genes affecting translation that can contribute to p53-dependent cellular responses.
Insights
The tumor suppressor p53 regulates gene expression at both transcriptional and translational levels. This study reveals p53 controls translation via RNA-binding proteins, impacting cellular responses.
Area of Science:
- Molecular Biology
- Cell Biology
- Genetics
Background:
- Genome-wide transcriptome analyses reveal extensive p53-regulated transcriptional networks.
- Post-transcriptional control represents an additional layer of p53-directed gene expression.
Purpose of the Study:
- To investigate post-transcriptional controls in p53-mediated gene expression responses.
- To analyze the translatome and its relationship with the transcriptome in p53 activation.
Main Methods:
- Translatome analysis using polysomal profiling in MCF7 cells treated with doxorubicin or nutlin-3a.
- Comparison of transcriptome and translatome data to identify uncoupled gene expression.
- Identification of p53-modulated RNA-binding proteins and their regulatory mechanisms.
Main Results:
- Significant uncoupling between transcription and translation for genes involved in apoptosis, DNA/RNA metabolism, and cell cycle.
- p53 directly and indirectly modulates six RNA-binding proteins (hnRNPD, CPEB4, SRSF1, DDX17, YBX1, TARDBP).
- YBX1 translation is repressed by p53 through mTOR inhibition and miR-34a expression.
Conclusions:
- p53 acts as a master regulator of translational control, extending its role beyond transcriptional regulation.
- Post-transcriptional modulation by p53 influences classical p53-regulated cellular responses.
- Identified novel p53-regulated translational targets contributing to p53-dependent cellular functions.
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