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Updated: Jun 1, 2026

Yeast As a Chassis for Developing Functional Assays to Study Human P53
Published on: August 4, 2019
p53 transactivation and the impact of mutations, cofactors and small molecules using a simplified yeast-based
Virginia Andreotti1, Yari Ciribilli, Paola Monti
1Unit of Molecular Mutagenesis, National Institute for Cancer Research, IST, Genoa, Italy.
Background:
The p53 tumor suppressor, which is altered in most cancers, is a sequence-specific transcription factor that is able to modulate the expression of many target genes and influence a variety of cellular pathways. Inactivation of the p53 pathway in cancer frequently occurs through the expression of mutant p53 protein. In tumors that retain wild type p53, the pathway can be altered by upstream modulators, particularly the p53 negative regulators MDM2 and MDM4.
Methodology/Principal Findings:
Given the many factors that might influence p53 function, including expression levels, mutations, cofactor proteins and small molecules, we expanded our previously described yeast-based system to provide the opportunity for efficient investigation of their individual and combined impacts in a miniaturized format. The system integrates i) variable expression of p53 proteins under the finely tunable GAL1,10 promoter, ii) single copy, chromosomally located p53-responsive and control luminescence reporters, iii) enhanced chemical uptake using modified ABC-transporters, iv) small-volume formats for treatment and dual-luciferase assays, and v) opportunities to co-express p53 with other cofactor proteins. This robust system can distinguish different levels of expression of WT and mutant p53 as well as interactions with MDM2 or 53BP1.
Conclusions/Significance:
We found that the small molecules Nutlin and RITA could both relieve the MDM2-dependent inhibition of WT p53 transactivation function, while only RITA could impact p53/53BP1 functional interactions. PRIMA-1 was ineffective in modifying the transactivation capacity of WT p53 and missense p53 mutations. This dual-luciferase assay can, therefore, provide a high-throughput assessment tool for investigating a matrix of factors that can influence the p53 network, including the effectiveness of newly developed small molecules, on WT and tumor-associated p53 mutants as well as interacting proteins.
Insights
Researchers developed a yeast-based system to study the p53 tumor suppressor pathway. Small molecules Nutlin and RITA were found to modulate wild-type p53 function, aiding cancer research.
Area of Science:
- Molecular Biology
- Cancer Research
- Biochemistry
Background:
- The p53 tumor suppressor is frequently altered in cancers, playing a crucial role in cellular pathways.
- Inactivation of the p53 pathway in cancer often involves mutant p53 or alterations in its negative regulators, MDM2 and MDM4.
- Understanding factors influencing p53 is critical for cancer therapy development.
Purpose of the Study:
- To develop and validate a miniaturized yeast-based system for efficiently investigating factors impacting p53 function.
- To assess the effects of small molecules on wild-type (WT) and mutant p53.
- To evaluate the interactions between p53, MDM2, and 53BP1.
Main Methods:
- Expansion of a previously described yeast-based system for high-throughput analysis.
- Integration of tunable p53 expression, luminescence reporters, enhanced chemical uptake, and dual-luciferase assays.
- Co-expression of p53 with cofactor proteins to study interactions.
Main Results:
- The system successfully distinguished varying expression levels of WT and mutant p53, and their interactions with MDM2 and 53BP1.
- Small molecules Nutlin and RITA relieved MDM2-dependent inhibition of WT p53 transactivation.
- RITA impacted p53/53BP1 interactions, while PRIMA-1 showed no effect on WT p53 or missense mutants.
Conclusions:
- The developed dual-luciferase assay is a high-throughput tool for assessing factors influencing the p53 network.
- This system can evaluate small molecules' effectiveness on WT and mutant p53, and interacting proteins.
- Findings provide insights into p53 pathway modulation for potential cancer therapeutics.
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