DNA repair-deficient Xpa and Xpa/p53+/- knock-out mice: nature of the models

H van Steeg1, A de Vries, van Oostrom CTh

  • 1National Institute of Public Health and the Environment (RIVM), Department of Carcinogenesis, Mutagenesis and Genetics, Bilthoven, The Netherlands. H.van.Steeg@rivm.nl

Toxicologic Pathology
|November 7, 2001
PubMed

Insights

Xeroderma pigmentosum (XP) mouse models with defects in DNA repair pathways were developed to study chemical carcinogens. The Xpa/p53+/- double knockout mice show increased sensitivity and specificity for identifying human carcinogens.

Area of Science:

  • Genetics and Molecular Biology
  • Toxicology and Carcinogenesis
  • Cancer Research

Background:

  • Xeroderma pigmentosum (XP) is a rare genetic disorder characterized by impaired DNA repair, leading to extreme sun sensitivity and a significantly increased risk of skin cancer.
  • The nucleotide excision repair (NER) pathway is crucial for repairing UV-induced DNA damage, and defects in NER are central to XP pathogenesis.
  • Understanding the role of NER in chemical-induced tumorigenesis is essential for identifying human carcinogens.

Purpose of the Study:

  • To develop and characterize mouse models for studying chemical carcinogenesis, focusing on the nucleotide excision repair (NER) pathway.
  • To evaluate the utility of Xpa knockout mice and Xpa/p53+/- double knockout mice in carcinogenicity testing.
  • To assess the potential of these mouse models as replacements for traditional chronic mouse bioassays.

Main Methods:

  • Development of Xpa-/- homozygous knockout mice with a complete defect in NER.
  • Crossbreeding of Xpa mice with p53+/- heterozygous mice to create Xpa/p53+/- double knockout mice.
  • Exposure of these mouse models to genotoxic carcinogens to assess tumor development incidence and latency.

Main Results:

  • Xpa mice exhibit high-frequency skin tumor development upon UV exposure, mimicking human XP.
  • Xpa mice are susceptible to orally administered genotoxic carcinogens.
  • Xpa/p53+/- double knockout mice develop tumors earlier and with higher incidences compared to single knockout mice.
  • The Xpa/p53+/- model demonstrated higher sensitivity and specificity in identifying known human carcinogens in short-term testing.

Conclusions:

  • The Xpa mouse is a valuable model for studying NER's role in chemical carcinogenesis.
  • The Xpa/p53+/- double knockout mouse model offers enhanced sensitivity and specificity for carcinogenicity testing.
  • This double knockout model shows promise as a more efficient alternative to chronic mouse bioassays for certain chemical classes.

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