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Accelerated elimination of ultraviolet-induced DNA damage through apoptosis in CDC25A-deficient skin
Jodi Yanagida1, Brianna Hammiller, Jenan Al-Matouq
1Department of Biomedical Sciences, Creighton University School of Medicine, 2500 California Plaza Omaha, NE 68178, USA.
Abstract:
Cell division cycle 25A (CDC25A) is a dual-specificity phosphatase that removes inhibitory phosphates from cyclin-dependent kinases, allowing cell-cycle progression. Activation of cell-cycle checkpoints following DNA damage results in the degradation of CDC25A, leading to cell-cycle arrest. Ultraviolet (UV) irradiation, which causes most skin cancer, results in both DNA damage and CDC25A degradation. We hypothesized that ablation of CDC25A in the skin would increase cell-cycle arrest following UV irradiation, allowing for improved repair of DNA damage and decreased tumorigenesis. Cdc25a(fl/fl) /Krt14-Cre recombinase mice, with decreased CDC25A in the epithelium of the skin, were generated and exposed to UV. UV-induced DNA damage, in the form of cyclopyrimidine dimers and 8-oxo-deoxyguanosine adducts, was eliminated earlier from CDC25A-deficient epidermis. Surprisingly, loss of CDC25A did not alter epidermal proliferation or cell cycle after UV exposure. However, the UV-induced apoptotic response was prolonged in CDC25A-deficient skin. Double labeling of cleaved caspase-3 and the DNA damage marker γH2A.X revealed many of the apoptotic cells in UV-exposed Cdc25a mutant skin had high levels of DNA damage. Induction of skin tumors by UV irradiation of Cdc25a mutant and control mice on a skin tumor susceptible to v-ras(Ha) Tg.AC mouse background revealed UV-induced papillomas in Cdc25a mutants were significantly smaller than in controls in the first 6 weeks following UV exposure, although there was no difference in tumor multiplicity or incidence. Thus, deletion of Cdc25a increased apoptosis and accelerated the elimination of DNA damage following UV but did not substantially alter cell-cycle regulation or tumorigenesis.
Insights
Ablating cell division cycle 25A (CDC25A) in skin accelerates DNA damage repair and increases apoptosis after UV exposure. However, it did not significantly alter cell-cycle regulation or skin tumor development.
Area of Science:
- Molecular Biology
- Dermatology
- Oncology
Background:
- Cell division cycle 25A (CDC25A) is a phosphatase crucial for cell-cycle progression.
- DNA damage, such as from UV irradiation, triggers CDC25A degradation, causing cell-cycle arrest.
- Skin cancer, often caused by UV, involves DNA damage and CDC25A degradation.
Purpose of the Study:
- To investigate the role of CDC25A in skin's response to UV irradiation.
- To determine if reducing CDC25A enhances DNA repair and decreases skin tumorigenesis.
- To analyze the impact of CDC25A ablation on cell-cycle regulation, apoptosis, and tumor formation post-UV exposure.
Main Methods:
- Generated Cdc25a(fl/fl) /Krt14-Cre mice with reduced skin CDC25A.
- Exposed these mice and controls to UV irradiation.
- Assessed DNA damage, cell proliferation, apoptosis, and skin tumor development.
Main Results:
- CDC25A-deficient epidermis showed accelerated elimination of UV-induced DNA damage (cyclopyrimidine dimers, 8-oxo-deoxyguanosine).
- Loss of CDC25A did not affect epidermal proliferation or cell cycle post-UV.
- A prolonged apoptotic response was observed in CDC25A-deficient skin, with apoptotic cells showing high DNA damage.
- UV-induced papillomas were smaller in CDC25A-deficient mice, but tumor incidence and multiplicity were unchanged.
Conclusions:
- CDC25A deletion enhances apoptosis and DNA damage repair in UV-exposed skin.
- CDC25A is not essential for UV-induced cell-cycle arrest in the epidermis.
- Targeting CDC25A may influence DNA repair dynamics but does not substantially alter skin tumorigenesis in this model.
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