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Intragenomic repair heterogeneity of DNA damage
D A Scicchitano1, P C Hanawalt
1Department of Biology, New York University, NY 10003.
Abstract:
The mutagenic and carcinogenic consequences of unrepaired DNA damage depend upon its precise location with respect to the relevant genomic sites. Therefore, it is important to learn the fine structure of DNA damage, in particular, proto-oncogenes, tumor-suppressor genes, and other DNA sequences implicated in tumorigenesis. Both the introduction and the repair of many types of DNA lesions are heterogeneous with respect to chromatin structure and/or gene activity. For example, cyclobutane pyrimidine dimers are removed more efficiently from the transcribed than the nontranscribed strand of the dhfr gene in Chinese hamster ovary cells. In contrast, preferential strand repair of alkali-labile sites is not found at this locus. In mouse 3T3 cells, dimers are more efficiently removed from an expressed proto-oncogene than from a silent one. Persistent damage in nontranscribed domains may account for genomic instability in those regions, particularly during cell proliferation as lesions are encountered by replication forks. The preferential repair of certain lesions in the transcribed strands of active genes results in a bias toward mutagenesis owing to persistent lesions in the nontranscribed strands. Risk assessment in environmental genetic toxicology requires assays that determine effective levels of DNA damage of producing malignancy. The existence of nonrandom repair in the mammalian genome casts doubt on the reliability of overall indicators of carcinogen-DNA binding and lesion repair for such determinations. Tissue-specific and cell-specific differences in the coordinate regulation of gene expression and DNA repair may account for corresponding differences in the carcinogenic response to particular environmental agents.
Insights
DNA damage location matters for cancer risk. Unrepaired DNA damage in specific genes, like proto-oncogenes, can lead to cancer. DNA repair efficiency varies, impacting mutagenesis and risk assessment.
Area of Science:
- Genetics
- Molecular Biology
- Cancer Research
Background:
- The mutagenic and carcinogenic effects of DNA damage are influenced by its genomic location.
- DNA damage and repair processes are heterogeneous, depending on chromatin structure and gene activity.
Purpose of the Study:
- To investigate the fine structure of DNA damage and its repair in relation to tumorigenesis.
- To understand how preferential DNA repair in active genes influences mutagenesis and cancer risk.
Main Methods:
- Analysis of DNA lesion distribution and repair kinetics in specific genomic regions.
- Comparison of DNA repair efficiency in transcribed versus nontranscribed strands and expressed versus silent genes.
Main Results:
- Cyclobutane pyrimidine dimers are repaired more efficiently from transcribed strands of active genes (e.g., dhfr gene).
- Preferential repair is observed in expressed proto-oncogenes compared to silent ones.
- Persistent DNA damage in nontranscribed regions may contribute to genomic instability.
Conclusions:
- Nonrandom DNA repair in the mammalian genome affects mutagenesis and carcinogenic outcomes.
- Overall indicators of DNA damage and repair may not reliably predict cancer risk.
- Tissue- and cell-specific differences in DNA repair and gene expression influence susceptibility to environmental carcinogens.