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Identifying DNA Mutations in Purified Hematopoietic Stem/Progenitor Cells
Published on: February 24, 2014
Mouse model for the DNA repair/basal transcription disorder trichothiodystrophy reveals cancer predisposition
J de Boer1, H van Steeg, R J Berg
1MGC-Department of Cell Biology and Genetics, Erasmus University, Rotterdam, The Netherlands.
Abstract:
Patients with the nucleotide excision repair (NER) disorder xeroderma pigmentosum (XP) are highly predisposed to develop sunlight-induced skin cancer, in remarkable contrast to photosensitive NER-deficient trichothiodystrophy (TTD) patients carrying mutations in the same XPD gene. XPD encodes a helicase subunit of the dually functional DNA repair/basal transcription complex TFIIH. The pleiotropic disease phenotype is hypothesized to be, in part, derived from a repair defect causing UV sensitivity and, in part, from a subtle, viable basal transcription deficiency accounting for the cutaneous, developmental, and the typical brittle hair features of TTD. To understand the relationship between deficient NER and tumor susceptibility, we used a mouse model for TTD that mimics an XPD point mutation of a TTD patient in the mouse germline. Like the fibroblasts from the patient, mouse cells exhibit a partial NER defect, evident from the reduced UV-induced DNA repair synthesis (residual repair capacity approximately 25%), limited recovery of RNA synthesis after UV exposure, and a relatively mild hypersensitivity to cell killing by UV or 7,12-dimethylbenz[a]anthracene. In accordance with the cellular studies, TTD mice exhibit a modestly increased sensitivity to UV-induced inflammation and hyperplasia of the skin. In striking contrast to the human syndrome, TTD mice manifest a dear susceptibility to UV- and 7,12-dimethylbenz[a]anthracene-induced skin carcinogenesis, albeit not as pronounced as the totally NER-deficient XPA mice. These findings open up the possibility that TTD is associated with a so far unnoticed cancer predisposition and support the notion that a NER deficiency enhances cancer susceptibility. These findings have important implications for the etiology of the human disorder and for the impact of NER on carcinogenesis.
Insights
Patients with trichothiodystrophy (TTD), a DNA repair disorder, show increased skin cancer susceptibility, unlike humans with the same genetic defect. This suggests a previously unrecognized cancer risk associated with TTD.
Area of Science:
- Molecular biology
- Genetics
- Dermatology
Background:
- Nucleotide excision repair (NER) disorders like xeroderma pigmentosum (XP) confer high skin cancer risk.
- Trichothiodystrophy (TTD) patients, also NER-deficient due to XPD gene mutations, are photosensitive but not typically cancer-prone.
- XPD protein functions in both DNA repair and basal transcription via the TFIIH complex.
Purpose of the Study:
- To investigate the relationship between nucleotide excision repair (NER) deficiency and cancer susceptibility using a mouse model of TTD.
- To understand how XPD mutations impact DNA repair, transcription, and UV-induced carcinogenesis.
Main Methods:
- Generated a mouse model mimicking a TTD-associated XPD point mutation.
- Assessed cellular DNA repair synthesis, RNA synthesis recovery post-UV, and cell survival after UV or chemical exposure.
- Evaluated UV-induced skin inflammation, hyperplasia, and carcinogenesis in TTD mice.
Main Results:
- TTD mouse cells showed partial NER deficiency (approx. 25% residual repair capacity) and mild hypersensitivity to UV and chemical mutagens.
- TTD mice exhibited modest UV-induced skin inflammation and hyperplasia.
- TTD mice displayed significant susceptibility to UV- and chemical-induced skin carcinogenesis, though less than XPA mice.
Conclusions:
- TTD is associated with an increased predisposition to skin cancer, a finding not typically observed in human TTD patients.
- NER deficiency enhances cancer susceptibility, highlighting the critical role of DNA repair in preventing carcinogenesis.
- These findings have implications for understanding TTD etiology and the broader impact of DNA repair on cancer development.
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