Slow accumulation of mutations in Xpc-/- mice upon induction of oxidative stress

Joost P M Melis1, Raoul V Kuiper, Edwin Zwart

  • 1National Institute for Public Health and the Environment, Center for Health Protection, Bilthoven 3721 MA, The Netherlands; Leiden University Medical Center, Department of Toxicogenetics, Leiden 2300 RC, The Netherlands.

DNA Repair
|October 3, 2013
PubMed

Insights

Mice lacking the XPC protein show increased mutations from oxidative DNA damage, suggesting XPC plays a role in preventing cancer by limiting mutagenesis.

Area of Science:

  • Molecular Biology
  • Genetics
  • Cancer Research

Background:

  • The xeroderma pigmentosum C (XPC) protein is crucial for DNA repair via the nucleotide excision repair (NER) pathway.
  • Previous studies suggest XPC's involvement in defending against oxidative DNA damage, but its in vivo role remains unclear.
  • XPC has been linked to base excision repair (BER) regulation, redox homeostasis, and DNA damage signaling.

Purpose of the Study:

  • To investigate the in vivo role of XPC in the oxidative DNA damage response and mutagenesis.
  • To determine if XPC deficiency impacts mutational load under oxidative stress conditions.
  • To elucidate the contribution of XPC to carcinogenesis through its effects on mutagenesis.

Main Methods:

  • Utilized Xpc(-/-) and Xpa(-/-) mouse models alongside wild-type controls.
  • Induced oxidative stress to assess DNA damage response and mutagenesis.
  • Quantified mutational load and analyzed mutation accumulation rates.

Main Results:

  • Xpc(-/-) mice exhibited a significantly increased mutational load compared to Xpa(-/-) and wild-type mice upon oxidative stress induction.
  • Mutations in Xpc(-/-) mice accumulated slowly over time.
  • The observed mutagenesis correlated with late-onset lung tumors in Xpc(-/-) mice.

Conclusions:

  • XPC deficiency leads to increased mutagenesis under oxidative stress, highlighting its role in DNA damage tolerance.
  • The findings suggest XPC's function in limiting oxidative stress-induced mutations contributes to preventing carcinogenesis.
  • This research clarifies XPC's in vivo importance in the cellular defense against oxidative damage and associated mutagenesis.

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