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Processing of directly and indirectly ultraviolet-induced DNA damage in human cells
1Department of Dermatology, University of Würzburg, Germany.
Abstract:
Mutations caused by ultraviolet (UV)-induced DNA damage represent the initial genetic changes in the tumorigenesis of UV-induced skin cancer. Different wavelengths of UV radiation cause different kinds of DNA damage and mutations. UVB (290-320 nm) generates pyrimidine dimers by direct excitation of the DNA molecule. UVA (320-400 nm) can damage the DNA only indirectly through a photosensitized reaction. This indirect action is mediated mainly by singlet oxygen, which generates purine base modifications, and has been implicated in the carcinogenic effects of UVA. In order to study the processing of directly and indirectly UV-induced DNA damage in human cells, we first treated the replicating plasmid pRSVcat with up to 10 kJ/m2 UVB or with the photosensitizer methylene blue plus visible light (which generates singlet oxygen) in vitro. Then, the damaged plasmid was transfected into normal or repair deficient xeroderma pigmentosum complementation group A (XP-A) cells. DNA repair was assessed by measuring activity of reactivated chloramphenicol acetyltransferase (CAT) enzyme, encoded by the plasmid's cat gene, in cell extracts after 3 days. While XP-A cells exhibited a significantly reduced repair of UVB-induced DNA damage, they showed a normal repair of singlet oxygen-induced DNA damage. This indicates a differential DNA repair pathway for directly and indirectly UV-induced DNA damage in human cells. Irradiation of the plasmid with UVA alone did not result in a genotoxic effect. Only in conjunction with a cell extract, which provides all candidate cellular photosensitizers, did we find a reduced CAT activity after transfection. This indicates that the genotoxicity of UVA is mediated by a cellular photosensitizer.
Insights
Ultraviolet (UV) radiation causes DNA damage, leading to skin cancer. This study reveals distinct DNA repair pathways for direct (UVB) and indirect (UVA) UV damage in human cells.
Area of Science:
- Molecular Biology
- Genetics
- Photobiology
Background:
- Ultraviolet (UV) radiation induces DNA damage, a key step in skin cancer development.
- Different UV wavelengths (UVA and UVB) cause distinct types of DNA lesions.
- UVA damage is indirect, mediated by photosensitizers like singlet oxygen, while UVB causes direct DNA damage.
Purpose of the Study:
- To investigate the processing and repair of directly and indirectly UV-induced DNA damage in human cells.
- To differentiate the cellular response to UVB-induced DNA damage versus singlet oxygen-induced DNA damage.
- To elucidate the mechanism of UVA genotoxicity.
Main Methods:
- Replicating plasmid pRSVcat was treated with UVB or photosensitized singlet oxygen in vitro.
- Damaged plasmids were transfected into normal and xeroderma pigmentosum complementation group A (XP-A) cells.
- DNA repair was assessed by measuring chloramphenicol acetyltransferase (CAT) enzyme activity.
Main Results:
- XP-A cells showed reduced repair of UVB-induced DNA damage but normal repair of singlet oxygen-induced damage.
- UVA alone had no genotoxic effect on the plasmid.
- UVA-induced genotoxicity was observed only when cellular photosensitizers were present, indicating a photosensitizer-mediated mechanism.
Conclusions:
- Human cells possess differential DNA repair pathways for direct (UVB) and indirect (UVA-mediated singlet oxygen) UV damage.
- UVA's genotoxicity is dependent on cellular photosensitizers.
- Understanding these distinct repair mechanisms is crucial for skin cancer research.