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Published on: December 19, 2019
The absence of Brm exacerbates photocarcinogenesis
Gary M Halliday1, Yue Zhou, Paul W Sou
1Discipline of Dermatology, Bosch Institute, Sydney Medical School, University of Sydney, Sydney, NSW, Australia. gary.halliday@sydney.edu.au
Abstract:
Brm is an ATPase subunit of the SWI/SNF chromatin-remodelling complex. Previously, we identified a novel hotspot mutation in Brm in human skin cancer, which is caused by exposure to ultraviolet radiation (UVR). As SWI/SNF is involved in DNA repair, we investigated whether Brm-/- mice had enhanced photocarcinogenesis. P53+/- and Brm-/-p53+/- mice were also examined as the p53 tumor suppressor gene is mutated early during human skin carcinogenesis. Mice were exposed to a low-dose irradiation protocol that caused few skin tumors in wild-type mice. Brm-/- mice with both p53 alleles intact had an increased incidence of skin and ocular tumors compared to Brm+/+p53+/+ controls. Brm loss in p53+/- mice did not further enhance skin or ocular cancer incidence beyond the increased photocarcinogenesis in p53+/- mice. However, the skin tumors that arose early in Brm-/- p53+/- mice had a higher growth rate. Brm-/- did not prevent UVR-induced apoptotic sunburn cell formation, which is a protective response. Unexpectedly, Brm-/- inhibited UVR-induced immunosuppression, which would be predicted to reduce rather than enhance photocarcinogenesis. In conclusion, the absence of Brm increased skin and ocular photocarcinogenesis. Even when one allele of p53 is lost, Brm has additional tumor suppressing capability.
Insights
The absence of Brm, a SWI/SNF complex subunit, enhances skin and ocular cancer development following ultraviolet radiation (UVR) exposure. Brm exhibits tumor-suppressing capabilities, even with p53 gene mutations.
Area of Science:
- Oncology
- Molecular Biology
- Genetics
Background:
- The SWI/SNF chromatin-remodeling complex, including the Brm ATPase subunit, plays a role in DNA repair.
- Ultraviolet radiation (UVR) exposure is a primary cause of human skin cancer.
- The p53 tumor suppressor gene is frequently mutated early in skin carcinogenesis.
Purpose of the Study:
- To investigate the role of Brm in UVR-induced skin cancer (photocarcinogenesis).
- To examine the combined effects of Brm deficiency and p53 mutations on skin cancer development.
Main Methods:
- Utilized Brm-/- and p53+/- mouse models exposed to a low-dose UVR irradiation protocol.
- Assessed tumor incidence, growth rate, UVR-induced apoptosis, and immunosuppression.
Main Results:
- Brm-/- mice exhibited increased skin and ocular tumor incidence compared to wild-type controls.
- Brm loss did not further increase cancer incidence in p53+/- mice but accelerated tumor growth.
- Brm deficiency did not impede protective sunburn cell formation but inhibited UVR-induced immunosuppression.
Conclusions:
- The absence of Brm significantly increases susceptibility to skin and ocular photocarcinogenesis.
- Brm possesses additional tumor-suppressing functions beyond its role in DNA repair, even when p53 is partially lost.
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