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Requirement of wild-type p53 protein for maintenance of chromosomal integrity
1Division of Genetics and Mutagenesis, National Institute of Health Sciences, Tokyo, Japan.
Abstract:
Chromosomal double-strand breaks (DSBs) occurring in mammalian cells can initiate genomic instability, and their misrepairs result in chromosomal deletion, amplification, and translocation, common findings in human tumors. The tumor-suppressor protein p53 is involved in maintaining genomic stability. In this study, we demonstrate that the deficiency of wild-type p53 protein may allow unrepaired DSBs to initiate chromosomal instability. The human lymphoblastoid cell line TK6-E6 was established by transfection with human papilloma virus 16 (HPV16) E6 cDNA into parental TK6 cells via a retroviral vector. Abrogation of p53 function by E6 resulted in an increase in the spontaneous mutation frequencies at the heterozygous thymidine kinase (TK) locus but not at the hemizygous hypoxanthine phosphoribosyl transferase (HPRT) locus. Almost all TK-deficient mutants from TK6-E6 cells exhibited loss of heterozygosity (LOH) with the hemizygous TK allele. LOH analysis with microsatellite loci spanning the long arm of chromosome 17, which harbors the TK locus, showed that LOH extended over half of 17q toward the terminal end. Cytogenetic analysis of LOH mutants by chromosome painting indicated a mosaic of chromosomal aberrations involving chromosome 17, in which partial chromosome deletions, amplifications, and multiple translocations appeared heterogeneously in a single mutant. We speculate that spontaneous DSBs trigger the breakage-fusion bridge cycle leading to such multiple chromosome aberrations. In contrast, no chromosomal alterations were observed in TK-deficient mutants from TK6-20C cells expressing wild-type p53. In wild-type p53 cells, spontaneous DSBs appear to be promptly repaired through recombination between homologous chromosomes. These results support a model in which p53 protein contributes to the maintenance of genomic integrity through recombinational repair.
Insights
The tumor suppressor protein p53 is crucial for genomic stability. Its deficiency allows unrepaired DNA double-strand breaks (DSBs) to cause chromosomal instability and mutations in mammalian cells.
Area of Science:
- Molecular Biology
- Genetics
- Cancer Research
Background:
- Chromosomal double-strand breaks (DSBs) are critical DNA lesions that can lead to genomic instability and mutations if misrepaired.
- The tumor suppressor protein p53 plays a vital role in maintaining genomic stability by regulating DNA repair pathways.
Purpose of the Study:
- To investigate the role of wild-type p53 in preventing chromosomal instability initiated by unrepaired DSBs.
- To determine if p53 deficiency leads to increased mutation frequencies and chromosomal aberrations.
Main Methods:
- Established a human lymphoblastoid cell line (TK6-E6) with ablated p53 function using HPV16 E6 cDNA.
- Assessed spontaneous mutation frequencies at the thymidine kinase (TK) and hypoxanthine phosphoribosyl transferase (HPRT) loci.
- Performed loss of heterozygosity (LOH) analysis and cytogenetic analysis (chromosome painting) on mutant cell lines.
Main Results:
- p53-deficient cells (TK6-E6) showed increased spontaneous mutation frequencies at the TK locus and extensive LOH on chromosome 17q.
- Cytogenetic analysis revealed a mosaic of chromosomal aberrations, including deletions, amplifications, and translocations, in TK6-E6 mutants.
- Cells expressing wild-type p53 (TK6-20C) did not exhibit chromosomal alterations, suggesting efficient DSB repair via homologous recombination.
Conclusions:
- p53 deficiency promotes chromosomal instability by allowing unrepaired DSBs to trigger aberrations, potentially via the breakage-fusion-bridge cycle.
- Wild-type p53 facilitates the maintenance of genomic integrity through prompt repair of DSBs, likely via homologous recombination.