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Updated: May 28, 2026

Yeast As a Chassis for Developing Functional Assays to Study Human P53
Published on: August 4, 2019
The role of mRNA decay in p53-induced gene expression
Brian D Melanson1, Reetesh Bose, Jeff D Hamill
1Cancer Therapeutics Program, Ottawa Hospital Research Institute, Ottawa, Ontario, Canada.
Abstract:
The p53 tumor suppressor is a DNA-damage-responsive sequence-specific transcriptional activator. The sustained activation of the p53 response is incompatible with cell growth and viability. To circumvent this issue, a variety of negative feedback loops exist to limit the duration of p53 activation. Despite our understanding of p53 regulation, very little is known about the effect of transient p53 activation on the long-term expression of p53 target genes. Here we used a temperature-sensitive variant of p53 and oligonucleotide microarrays to monitor gene expression during and following reversible p53 activation. The expression of most p53-induced transcripts was rapidly reversible, consistent with active mRNA decay. Representative 3' UTRs derived from short-lived transcripts (i.e., DDB2 and GDF15) conferred instability on a heterologous mRNA, while 3' UTRs derived from more stable transcripts (i.e., CRYAB and TP53I3) did not. The 3' UTRs derived from unstable p53-induced mRNAs were significantly longer than those derived from stable mRNAs. These 3' UTRs had high uridine and low cytosine content, leading to a higher density of U-, AU-, and GU-rich sequences. Remarkably, short-lived p53 targets were induced faster, reaching maximum transcript levels earlier than the stable p53 targets. Taken together, the evidence indicates that the p53 transcriptional response has evolved with primarily short-lived target mRNAs and that post-transcription processes play a prominent role in the p53 response.
Insights
Transient activation of the p53 tumor suppressor primarily involves short-lived target messenger RNAs (mRNAs). Post-transcriptional regulation, particularly mRNA decay, plays a key role in controlling gene expression following p53 activation.
Area of Science:
- Molecular Biology
- Genetics
- Cancer Research
Background:
- The p53 tumor suppressor is crucial for DNA damage response.
- Negative feedback loops regulate p53 activation duration.
- Long-term effects of transient p53 activation on gene expression are poorly understood.
Purpose of the Study:
- Investigate the impact of reversible p53 activation on target gene expression.
- Determine the role of post-transcriptional processes in p53-mediated gene regulation.
Main Methods:
- Utilized a temperature-sensitive p53 variant for reversible activation.
- Employed oligonucleotide microarrays to monitor gene expression dynamics.
- Analyzed 3' untranslated regions (UTRs) for their role in mRNA stability.
Main Results:
- Most p53-induced transcripts exhibited rapid reversibility, indicating active mRNA decay.
- 3' UTRs from short-lived transcripts conferred instability to heterologous mRNAs.
- Unstable p53 target mRNAs were shorter, richer in uridine, and induced faster than stable ones.
Conclusions:
- The p53 transcriptional response predominantly utilizes short-lived target mRNAs.
- Post-transcriptional mechanisms, especially mRNA decay, are critical in shaping the p53 response.
- 3' UTR characteristics influence mRNA stability and induction kinetics.
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