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Updated: Aug 19, 2026

Studying Chronic Exposure of Mice to Ultraviolet B Radiation
Published on: August 19, 2025
Dose-dependent effects of UVB-induced skin carcinogenesis in hairless p53 knockout mice
Henk J van Kranen1, Anja Westerman, Rob J W Berg
1National Institute of Public Health and Environment, Laboratory of Toxicology, Pathology and Genetics, Department of Carcinogenesis Mutagenesis and Aging, Bilthoven, The Netherlands. henk.van.kranen@rivm.nl
Abstract:
Exposure to (solar) UVB radiation gives rise to mutations in the p53 tumor suppressor gene that appear to contribute to the earliest steps in the molecular cascade towards human and murine skin cancer. To examine in more detail the role of p53, we studied UVB-induced carcinogenesis in hairless p53 knock-out mice. The early onset of lymphomas as well as early wasting of mice interfered with the development of skin tumors in p53 null-mice. The induction of skin tumors in the hairless p53+/- mice was accomplished by daily exposure to two different UV-doses of approximately 450 J/m2 and 900 J/m2 from F40 lamps corresponding to a fraction of about 0.4 and 0.8 of the minimal edemal dose. Marked differences in skin carcinogenesis were observed between the p53+/- mice and their wild type littermates. Firstly, at 900 J/m2, tumors developed significantly faster in the heterozygotes than in wild types, whereas at 450 J/m2 there was hardly any difference, suggesting that only at higher damage levels loss of one functional p53 allele is important. Secondly, a large portion (25%) of skin tumors in the heterozygotes were of a more malignant, poorly differentiated variety of squamous cell carcinomas, i.e. spindle cell carcinomas, a tumor type that was rarely observed in daily UV exposed wild type hairless mice. Thirdly, the p53 mutation spectrum in skin tumors in heterozygotes is quite different from that in wild types. Together these results support the notion that a point mutation in the p53 gene impacts skin carcinogenesis quite differently than allelic loss: the former is generally selected for in early stages of skin tumors in wild type mice, whereas the latter enhances tumor development only at high exposure levels (where apoptosis becomes more prevalent) and appears to increase progression (to a higher grade of malignancy) of skin tumors.
Insights
UVB radiation exposure causes skin cancer by affecting the p53 gene. This study in mice shows that losing one p53 gene copy accelerates tumor development and increases malignancy, especially at higher UV doses.
Area of Science:
- Oncology
- Genetics
- Dermatology
Background:
- Ultraviolet B (UVB) radiation is a known carcinogen, inducing mutations in the p53 tumor suppressor gene, a critical factor in skin cancer development.
- The p53 gene plays a crucial role in preventing cancer by regulating cell cycle arrest, apoptosis, and DNA repair.
Purpose of the Study:
- To investigate the specific roles of p53 point mutations versus allelic loss in UVB-induced skin carcinogenesis.
- To compare the development and characteristics of skin tumors in p53 heterozygous (p53+/-) mice and wild-type littermates following UVB exposure.
Main Methods:
- Hairless mice with either p53 knockout (null) or heterozygous (p53+/-) genotypes were subjected to daily UVB irradiation at different doses (450 J/m2 and 900 J/m2).
- Skin tumor development, latency, malignancy grade, and p53 mutation spectrum were analyzed and compared between p53+/- mice and wild-type controls.
Main Results:
- UVB exposure accelerated skin tumor development in p53+/- mice compared to wild-type mice, particularly at the higher dose (900 J/m2).
- A significant proportion (25%) of skin tumors in p53+/- mice were highly malignant spindle cell carcinomas, a type rarely seen in wild-type mice.
- The p53 mutation spectrum differed between p53+/- and wild-type mice, indicating distinct mechanisms of p53 involvement.
Conclusions:
- Allelic loss of the p53 gene enhances UVB-induced skin tumor development and progression to higher malignancy grades, especially under high-dose exposure.
- The findings suggest that p53 point mutations and allelic loss have distinct impacts on skin carcinogenesis, influencing tumor initiation and progression differently.
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