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DNA repair capacity for ultraviolet light-induced damage is reduced in peripheral lymphocytes from patients with
Q Wei1, G M Matanoski, E R Farmer
1Department of Epidemiology, Johns Hopkins School of Hygiene and Public Health, Baltimore, Maryland, USA.
Abstract:
Sunlight exposure and certain host factors such as red hair and fair skin are established risk factors for non-melanoma skin cancers. Because deficient DNA repair capacity has contributed to the development of skin cancers in a rare genetic disease, xeroderma pigmentosum, we explored this deficiency as an etiologic factor in a recent population study. We used a new DNA repair assay, the host-cell reactivation, in a clinic-based case-control study to test the hypothesis that reduced DNA repair is the underlying molecular mechanism for the development of sunlight-induced basal cell carcinoma. The peripheral lymphocytes from 88 patients with primary BCC and 135 cancer-free controls were tested for their capacity to repair ultraviolet light-induced DNA damage in a reporter gene, chloramphenicol acetyl transferase. All subjects were between the ages of 20 and 60 years and were frequency matched by age (+/- 5) and sex. Among those who reported frequent sunbathing, poor tanning ability, a history of multiple sunburns, exposure to chemicals, or multiple medical irradiations, the BCC patients had significantly lower DNA repair capacity than controls (p < 0.05). DNA repair capacity was also found substantially lower in the basal cell carcinoma patients who had red hair and light skin (type I). Compared to controls, basal cell carcinoma cases with selected risk factors had a relative decrease in DNA repair capacity of 10-28%. These findings provided evidence that reduced DNA repair capacity is one of the underlying molecular mechanisms for sunlight-induced skin carcinogenesis in the general population.
Insights
Reduced DNA repair capacity is linked to basal cell carcinoma (BCC) development in individuals with sun exposure risk factors. This finding suggests impaired DNA repair is a key mechanism in sunlight-induced skin cancer.
Area of Science:
- Dermatology
- Molecular Biology
- Genetics
Background:
- Sunlight exposure, red hair, and fair skin are known risk factors for non-melanoma skin cancers.
- Deficient DNA repair capacity is implicated in rare genetic skin cancer diseases like xeroderma pigmentosum.
Purpose of the Study:
- To investigate if reduced DNA repair capacity is an etiologic factor in sunlight-induced basal cell carcinoma (BCC).
- To test the hypothesis that impaired DNA repair is a molecular mechanism underlying BCC development.
Main Methods:
- A clinic-based case-control study involving 88 BCC patients and 135 cancer-free controls (ages 20-60).
- Utilized a host-cell reactivation assay to measure DNA repair capacity in peripheral lymphocytes.
- Assessed the ability to repair ultraviolet light-induced DNA damage using a chloramphenicol acetyl transferase reporter gene.
Main Results:
- BCC patients with frequent sunbathing, poor tanning, multiple sunburns, chemical exposure, or medical irradiations showed significantly lower DNA repair capacity than controls (p < 0.05).
- Basal cell carcinoma patients with red hair and light skin (Fitzpatrick skin type I) exhibited substantially lower DNA repair capacity.
- BCC cases with selected risk factors demonstrated a 10-28% relative decrease in DNA repair capacity compared to controls.
Conclusions:
- Reduced DNA repair capacity is a significant molecular mechanism contributing to sunlight-induced skin carcinogenesis in the general population.
- These findings highlight the role of impaired DNA repair in the etiology of basal cell carcinoma.