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Published on: November 10, 2016
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
Abstract:
Xeroderma pigmentosum (XP) is a rare autosomal recessive disease in which repair of ultraviolet (UV)-induced DNA damage is impaired or is totally absent due to mutations in genes controlling the DNA repair pathway known as nucleotide excision repair (NER). XP is characterized, in part, by extreme sensitivity of the skin to sunlight, and XP patients have a more than 1000-fold increased risk of developing cancer at sun-exposed areas of the skin. To study the role of NER in chemical-induced tumorigenesis in more detail, the authors developed Xpa-/- homozygous knockout mice with a complete defect in NER (designated as Xpa mice or XPA model). Xpa mice develop skin tumors at high frequency when exposed to UV light, and as such, they mimic the phenotype of human XP. Moreover, the Xpa mice also appear to be susceptible to genotoxic carcinogens given orally. Based on these phenotypic characteristics, the Xpa mice were considered to be an attractive candidate mouse model for use in identifying human carcinogens. In an attempt to further increase both the sensitivity and specificity of the XPA model in carcinogenicity testing, the authors crossed Xpa mice with mice having a heterozygous defect in the tumor suppressor gene p53. Xpa/p53+/- double knockout mice develop tumors earlier and with higher incidences upon exposure to carcinogens as compared to their single knockout counterparts. Here the authors describe the development and features of the Xpa mouse and present some examples of the Xpa and Xpa/p53+/- mouse models' sensitivity towards genotoxic carcinogens. It appeared that the Xpa/p53+/- double knockout mouse model is favorable over both the Xpa and p53+/- single knockout models in short-term carcinogenicity testing. In addition to the fact that the double knockout mice respond more robustly to carcinogens, they also appear to respond in a very discriminative way. All compounds identified thus far are true (human) carcinogens, and, therefore, the authors believe that the Xpa/p53+/- mouse model is an excellent candidate for a future replacement of the chronic mouse bioassay, at least for certain classes of chemicals.
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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