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Regulation of XPC Binding Dynamics and Global Nucleotide Excision Repair by p63 and Vitamin D Receptor
Christian T Wong1,2, Katherine Ona1,2, Dennis H Oh1,2
1Dermatology Research Unit, San Francisco VA Health Care System, San Francisco, California 94121, United States.
Abstract:
p63 and the vitamin D receptor (VDR) play important roles in epidermal development and differentiation, but their roles and relationship in the response to ultraviolet (UV) radiation are less clear. Using TERT-immortalized human keratinocytes expressing shRNA targeting p63 in concert with exogenously applied siRNA targeting VDR, we assessed p63 and VDR's separate and combined effect on nucleotide excision repair (NER) of UV-induced 6-4 photoproducts (6-4PP). Knockdown of p63 reduced VDR and XPC expression relative to nontargeting controls, while knockdown of VDR had no effect on p63 and XPC protein expression, though alone it modestly reduced XPC mRNA. Upon UV irradiation through filters with 3 μm pores to create spatially discrete spots of DNA damage, keratinocytes depleted of p63 or VDR exhibited slower removal of 6-4PP than control cells over the first 30 min. Costaining of control cells with antibodies to XPC revealed that XPC accumulated at DNA damage foci, peaking within 15 min and gradually fading over 90 min as NER proceeded. In either p63- or VDR-depleted keratinocytes, XPC overaccumulated at spots of DNA damage so that 50% more XPC was retained at 15 min and 100% more XPC was retained at 30 min than in control cells, suggesting dissociation of XPC after binding was also delayed. Concurrent knockdown of VDR and p63 resulted in similar impairment of 6-4PP repair and XPC overaccumulation but even slower release of XPC from DNA damage sites such that 200% more XPC was retained relative to controls at 30 min post-UV. These results suggest that VDR accounts for some of p63's effects in delaying 6-4PP repair associated with overaccumulation and slower dissociation of XPC, though p63's regulation of basal XPC expression appears to be VDR-independent. The results are consistent with a model where XPC dissociation is an important step during NER and that failure to do so may inhibit subsequent repair steps. This work further links two important regulators of epidermal growth and differentiation to the DNA repair response to UV.
Insights
p63 and vitamin D receptor (VDR) influence DNA repair after UV exposure. Depleting either delays UV damage removal and slows protein XPC release, impacting epidermal response to ultraviolet radiation.
Area of Science:
- Molecular Biology
- Dermatology
- DNA Repair Mechanisms
Background:
- p63 and VDR are crucial for skin development and differentiation.
- Their roles in UV radiation response and DNA repair are not fully understood.
Purpose of the Study:
- To investigate the individual and combined effects of p63 and VDR on nucleotide excision repair (NER) of UV-induced DNA damage.
- To elucidate the relationship between p63, VDR, and XPC protein in the DNA repair process following UV exposure.
Main Methods:
- Utilized TERT-immortalized human keratinocytes with targeted knockdown of p63 (shRNA) and VDR (siRNA).
- Assessed the repair of UV-induced 6-4 photoproducts (6-4PP) after UV irradiation.
- Quantified the accumulation and dissociation of XPC protein at DNA damage sites using costaining.
Main Results:
- Knockdown of p63 decreased VDR and XPC expression; VDR knockdown had minimal impact on p63 and XPC protein levels.
- Depletion of p63 or VDR individually slowed 6-4PP removal and caused XPC overaccumulation and delayed dissociation at damage sites.
- Combined knockdown of p63 and VDR exacerbated XPC retention at DNA damage sites, indicating impaired NER.
Conclusions:
- VDR contributes to p63's role in delaying UV damage repair by influencing XPC dynamics.
- p63 regulates basal XPC expression independently of VDR.
- XPC dissociation is a critical step in NER, and its impairment can hinder subsequent repair, linking epidermal regulators to UV DNA repair response.
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