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.

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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