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Updated: Jun 14, 2026

Pharmacologic Induction of Epidermal Melanin and Protection Against Sunburn in a Humanized Mouse Model
Published on: September 7, 2013
DNA repair gene polymorphisms and genetic predisposition to cutaneous melanoma
Joanne E Povey1, Fatemeh Darakhshan, Karen Robertson
1Sir Alastair Currie Cancer Research UK Laboratories, Molecular Medicine Centre, University of Edinburgh, Western General Hospital, Crewe Road, Edinburgh, EH4 2XU, UK.
Abstract:
The incidence of cutaneous melanoma is rising rapidly in a number of countries. The key environmental risk factor is exposure to the ultraviolet (UV) component in sunlight. The nucleotide excision repair (NER) pathway deals with the main forms of UV-induced DNA damage. We have investigated the hypothesis that polymorphisms in NER genes constitute genetic susceptibility factors for melanoma. However, not all melanomas arise on sun-exposed sites and so we investigated the hypothesis that genes involved in other pathways for the repair of oxidative DNA damage may also be involved in susceptibility to melanoma. Scotland, with its high incidence of melanoma and stable homogeneous population, was ideal for this case-control study, involving 596 Scottish melanoma patients and 441 population-based controls. Significant associations were found for the NER genes ERCC1 and XPF, with the strongest associations for melanoma cases aged 50 and under [ERCC1 odds ratio (OR) 1.59, P = 0.008; XPF OR 1.69, P = 0.003]. Although an XPD haplotype was associated with melanoma, it did not contain the variant 751 Gln allele, which has been associated with melanoma in some previous studies. No associations were found for the base excision repair and DNA damage response genes investigated. An association was also found for a polymorphism in the promoter of the vitamin D receptor gene, VDR (OR 1.88, P = 0.005). The products of the two NER genes, ERCC1 and XPF, where associations with melanoma were found, act together in a rate-limiting step in the repair pathway.
Insights
Genetic variations in DNA repair genes ERCC1 and XPF are linked to increased melanoma risk, particularly in younger individuals. A vitamin D receptor gene variant also showed an association with this skin cancer.
Area of Science:
- Genetics
- Dermatology
- Molecular Biology
Background:
- Cutaneous melanoma incidence is increasing globally.
- Ultraviolet (UV) radiation is a primary environmental risk factor.
- DNA repair pathways, including nucleotide excision repair (NER), counteract UV-induced DNA damage.
Purpose of the Study:
- To investigate if polymorphisms in NER genes contribute to melanoma susceptibility.
- To explore the role of genes involved in oxidative DNA damage repair in melanoma risk.
- To identify genetic factors influencing melanoma development in a Scottish population.
Main Methods:
- A case-control study was conducted in Scotland.
- 596 melanoma patients and 441 population-based controls were recruited.
- Genetic polymorphisms in NER, base excision repair, DNA damage response, and vitamin D receptor genes were analyzed.
Main Results:
- Significant associations were found for NER genes ERCC1 and XPF with melanoma risk.
- Strongest associations for ERCC1 and XPF were observed in melanoma cases aged 50 and under.
- A polymorphism in the vitamin D receptor (VDR) gene promoter was also associated with melanoma risk.
Conclusions:
- Polymorphisms in ERCC1 and XPF are potential genetic susceptibility factors for melanoma.
- The vitamin D receptor gene may also play a role in melanoma development.
- These findings highlight the importance of DNA repair gene variations in skin cancer etiology.
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