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Different removal of ultraviolet photoproducts in genetically related xeroderma pigmentosum and trichothiodystrophy
E Eveno1, F Bourre, X Quilliet
1Laboratory of Molecular Genetics, UPR 42 Institut Fédératif CNRS, Villejuif, France.
Abstract:
To understand the heterogeneity in genetic predisposition to skin cancer in different nucleotide excision repair-deficient human syndromes, we studied repair of cyclobutane pyrimidine dimers (CPDs) and of pyrimidine(6-4)pyrimidone (6-4PP) photoproducts in cells from trichothiodystrophy (TTD) patients. TTD is not associated with increased incidence of skin cancer, although 50% of the patients are photosensitive and carry a defect in the nucleotide excision repair pathway, similar to Xeroderma pigmentosum patients. However, in striking contrast to TTD, Xeroderma pigmentosum is highly prone to cancer. To address this apparent paradox, two types of studies were conducted: (a) reactivation of UV-irradiated plasmids harboring actively transcribed reporter genes, with or without photolyase treatment before transfection of SV40-transformed fibroblasts; and (b) the kinetics of removal of UV-induced CPDs and 6-4PPs in genomic DNA by immunoblot analysis using lesion-specific mAbs in SV40-transformed and untransformed fibroblasts representative of all genetic TTD complementation groups. Results showed that all cell lines from photosensitive TTD patients efficiently express Cat or luciferase genes in transfected plasmids carrying non-CPD lesions, including 6-4PP, and display wild-type or near-wild-type (50-70% in 3 cell lines) 6-4PP repair in the overall genome after immunoblot analysis. However, CPD lesions (the repair of which is defective in the overall genome) also block the expression of the reporter gene in transfected plasmids. Two cell lines from nonphotosensitive TTD patients showed wild-type levels of repair for both photoproducts in overall genome. A model on the lesion-specific repair in the context of the molecular defect in TTD is proposed. The implication of the defective CPD repair and efficient 6-4PP repair subpathways in cancer prevention in TTD patients is discussed.
Insights
Trichothiodystrophy (TTD) patients with nucleotide excision repair defects show efficient repair of 6-4PP photoproducts but defective cyclobutane pyrimidine dimer (CPD) repair. This efficient 6-4PP repair may explain the lack of skin cancer predisposition in TTD.
Area of Science:
- Molecular Biology
- Genetics
- Dermatology
Background:
- Nucleotide excision repair (NER) is crucial for removing DNA damage caused by UV radiation.
- Trichothiodystrophy (TTD) patients exhibit defects in NER but have a lower incidence of skin cancer compared to Xeroderma pigmentosum (XP) patients.
- Understanding NER heterogeneity in TTD is key to explaining cancer predisposition differences.
Purpose of the Study:
- To investigate the differential repair of cyclobutane pyrimidine dimers (CPDs) and pyrimidine(6-4)pyrimidone photoproducts (6-4PPs) in TTD patient cells.
- To elucidate the mechanisms behind the paradox of photosensitivity without high skin cancer risk in TTD.
Main Methods:
- Assessing reporter gene reactivation in UV-irradiated plasmids transfected into TTD fibroblasts.
- Quantifying CPD and 6-4PP removal in genomic DNA using lesion-specific monoclonal antibodies (mAbs) via immunoblot analysis.
- Studying cells from various genetic complementation groups of TTD.
Main Results:
- Photosensitive TTD cells efficiently repaired 6-4PPs and showed near-wild-type genomic 6-4PP repair.
- Defective CPD repair in TTD cells blocked reporter gene expression from plasmids containing CPD lesions.
- Non-photosensitive TTD cell lines exhibited wild-type repair for both CPDs and 6-4PPs.
Conclusions:
- TTD patients possess distinct DNA repair profiles, with efficient 6-4PP repair and defective CPD repair.
- Efficient 6-4PP repair may contribute to cancer prevention in TTD patients, despite NER deficiencies.
- A model for lesion-specific repair in TTD highlights the importance of differential photoproduct repair in disease outcome.
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