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Induction of p53 in mouse cells decreases mutagenesis by UV radiation
J Yuan1, T M Yeasky, P A Havre
1Department of Therapeutic Radiology, Yale University School of Medicine, New Haven, CT 06520-8040, USA.
Abstract:
The tumor suppressor protein, p53, is proposed to have a critical role in maintaining the integrity of the genetic material. It has been established that p53 induces a cell cycle block in the G1 phase upon cellular DNA damage. Recent evidence also indicates the involvement of p53 directly and indirectly in nucleotide excision repair (NER). We have examined the role of p53 with respect to UV-induced mutagenesis. By gene transfer, we established a mouse fibroblast cell line overexpressing the val135 temperature-sensitive p53 allele. In this line, p53 activity can be modulated through temperature shift, as confirmed by Western blot and by cell cycle analysis. This cell line was also constructed to contain a recoverable lambda phage shuttle vector carrying the supF mutation reporter gene. Induction of p53 was found to enhance the clonogenic survival of the cells following UV-irradiation compared to the p53-deficient parental mouse cell line. The transfectant line also displayed a 4-fold reduction in the frequency of UV-induced mutations as measured in the chromosomally integrated supF reporter gene. Our results are consistent with a p53-induced cell cycle block at G1 allowing cells to repair chromosomal damage before DNA replication. However, our data may also reflect a more direct role of p53 in the repair of UV-induced lesions as suggested by studies showing that p53 can interact directly with repair factors.
Insights
The tumor suppressor protein p53 enhances cell survival and reduces UV-induced mutations by blocking the cell cycle, aiding DNA repair. This highlights p53
Area of Science:
- Molecular Biology
- Genetics
- Cell Biology
Background:
- The tumor suppressor protein p53 is crucial for maintaining genetic integrity.
- p53 induces cell cycle arrest at G1 phase following DNA damage.
- p53 involvement in DNA repair, including nucleotide excision repair (NER), is increasingly recognized.
Purpose of the Study:
- To investigate the role of p53 in UV-induced mutagenesis.
- To determine if p53 influences cellular survival and mutation frequency after UV exposure.
Main Methods:
- Established a mouse fibroblast cell line overexpressing a temperature-sensitive p53 allele.
- Utilized a recoverable lambda phage shuttle vector with a supF reporter gene for mutation analysis.
- Assessed clonogenic survival and mutation frequency following UV irradiation at different temperatures to modulate p53 activity.
Main Results:
- Overexpression of p53 significantly enhanced clonogenic survival of cells post-UV irradiation.
- A 4-fold reduction in UV-induced mutation frequency was observed in cells with induced p53 activity.
- p53 activity modulation was confirmed via Western blot and cell cycle analysis.
Conclusions:
- p53 plays a protective role against UV-induced DNA damage and mutagenesis.
- Results support a p53-mediated G1 cell cycle block that facilitates DNA repair before replication.
- Findings suggest a potential direct role for p53 in repairing UV-induced DNA lesions.