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Yeast As a Chassis for Developing Functional Assays to Study Human P53
Published on: August 4, 2019
Gene expression and apoptosis induction in p53-heterozygous irradiated mice
Alessandra di Masi1, Antonio Antoccia, Ivan Dimauro
1Department of Biology, University of Rome Roma Tre, Viale G. Marconi, 446, 00146 Rome, Italy.
Abstract:
The role of the p53-genetic background in the expression of genes involved in either cell cycle checkpoint activation or apoptosis was evaluated in p53+/+ and p53+/- mouse strains at both basal levels and after DNA-induced damage. The spleen, colon, kidneys, lungs and liver of both strains were harvested from untreated animals and from mice exposed to 7.5 Gy of X-rays and sacrificed after 5 h. No significant differences were observed in the basal levels of p53 protein, CDKN1A and bax mRNA and spontaneous apoptosis, neither among the different organs within the same strain, nor between the same organ in the p53+/+ and p53+/- strains. After X-ray exposure, p53-dependent regulation was strikingly tissue-specific. In wild-type irradiated mice, p53 protein level increased after radiation treatment in all the organs analysed, whereas both CDKN1A and bax genes transcription increased in the spleen, colon and lungs, as assessed by means of quantitative RT-PCR. In p53+/- irradiated mice, on the contrary, a significant p53 induction was detected only in the spleen, while CDKN1A and bax genes levels increased in the spleen, colon and lungs, revealing the existence of different mechanisms of gene regulation in different organs. Apoptosis induction was observed in the spleen and colon of both strains, even if to lower extent in p53+/- mice compared to p53+/+ animals. In conclusion, in the spleen and colon, target gene transcription and apoptosis may be related to p53 genotype after DNA damage-induction. Moreover, our findings highlight the selectivity of p53 in transactivation following DNA damage in vivo, resulting in tissue-specific responses.
Insights
The p53 gene
Area of Science:
- Molecular Biology
- Genetics
- Cancer Research
Background:
- The tumor suppressor protein p53 plays a critical role in cellular responses to DNA damage.
- Understanding p53's role in gene expression and apoptosis is crucial for cancer therapy.
- Genetic background, specifically p53+/- status, may influence these responses.
Purpose of the Study:
- To investigate the impact of p53 genetic background on cell cycle and apoptosis-related gene expression.
- To analyze tissue-specific responses to DNA damage in p53+/+ and p53+/- mice.
- To explore the relationship between p53 genotype, gene transcription, and apoptosis induction.
Main Methods:
- Comparison of gene expression (CDKN1A, bax) and apoptosis levels in p53+/+ and p53+/- mice.
- Analysis of basal and DNA damage-induced (X-ray exposure) responses in spleen, colon, kidneys, lungs, and liver.
- Quantitative RT-PCR was used to assess gene transcription.
Main Results:
- No significant differences in basal gene expression or apoptosis were observed between strains or organs.
- X-ray exposure induced p53 protein levels in all organs of wild-type mice, with increased CDKN1A and bax transcription in spleen, colon, and lungs.
- In p53+/- mice, p53 induction was mainly in the spleen, while CDKN1A and bax increased in spleen, colon, and lungs, indicating tissue-specific regulation.
Conclusions:
- p53 genotype influences target gene transcription and apoptosis induction in spleen and colon following DNA damage.
- p53 exhibits selectivity in transactivation in vivo, leading to tissue-specific responses.
- These findings underscore the complexity of p53-mediated DNA damage response pathways.
Related Concept Videos
Abnormal Proliferation
The Intrinsic Apoptotic Pathway
DNA Damage can Stall the Cell Cycle
DNA Damage Can Stall the Cell Cycle

