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Published on: November 10, 2016
XPD polymorphisms: effects on DNA repair proficiency
R M Lunn1, K J Helzlsouer, R Parshad
1Laboratory of Computational Biology and Risk Analysis, National Institute of Environmental Health Sciences, National Institutes of Health, MD C3-03, PO Box 12233, Research Triangle Park, NC 27709, USA.
Abstract:
XPD codes for a DNA helicase involved in transcription and nucleotide excision repair. Rare XPD mutations diminish nucleotide excision repair resulting in hypersensitivity to UV light and increased risk of skin cancer. Several polymorphisms in this gene have been identified but their impact on DNA repair is not known. We compared XPD genotypes at codons 312 and 751 with DNA repair proficiency in 31 women. XPD genotypes were measured by PCR-RFLP. DNA repair proficiency was assessed using a cytogenetic assay that detects X-ray induced chromatid aberrations (breaks and gaps). Chromatid aberrations were scored per 100 metaphase cells following incubation at 37 degrees C (1.5 h after irradiation) to allow for repair of DNA damage. Individuals with the Lys/Lys codon 751 XPD genotype had a higher number of chromatid aberrations (132/100 metaphase cells) than those having a 751Gln allele (34/100 metaphase cells). Individuals having greater than 60 chromatid breaks plus gaps were categorized as having sub-optimal repair. Possessing a Lys/Lys751 genotype increased the risk of sub-optimal DNA repair (odds ratio = 7.2, 95% confidence interval = 1.01-87.7). The Asp312Asn XPD polymorphism did not appear to affect DNA repair proficiency. These results suggest that the Lys751 (common) allele may alter the XPD protein product resulting in sub-optimal repair of X-ray-induced DNA damage.
Insights
The XPD gene
Area of Science:
- Genetics
- Molecular Biology
- DNA Repair Mechanisms
Background:
- XPD is a DNA helicase crucial for transcription and nucleotide excision repair.
- XPD mutations impair DNA repair, increasing UV sensitivity and skin cancer risk.
- The functional impact of common XPD gene polymorphisms on DNA repair remains unclear.
Purpose of the Study:
- To investigate the association between XPD gene polymorphisms at codons 312 and 751 and DNA repair proficiency.
- To determine if specific XPD genotypes influence the repair of X-ray-induced DNA damage.
Main Methods:
- Genotyping of XPD codons 312 and 751 using PCR-RFLP in 31 women.
- Assessment of DNA repair proficiency via a cytogenetic assay measuring X-ray-induced chromatid aberrations.
- Scoring of chromatid aberrations per 100 metaphase cells after a repair incubation period.
Main Results:
- The XPD Lys/Lys genotype at codon 751 was linked to a significantly higher number of chromatid aberrations (132/100 cells) compared to the 751Gln allele (34/100 cells).
- Individuals with the Lys/Lys751 genotype had an increased risk (OR=7.2) of sub-optimal DNA repair, defined as >60 chromatid breaks/gaps.
- The XPD Asp312Asn polymorphism did not show a significant effect on DNA repair proficiency.
Conclusions:
- The XPD Lys751 allele may be associated with reduced DNA repair capacity for X-ray-induced damage.
- This suggests that common XPD polymorphisms can influence DNA repair efficiency, potentially impacting cancer risk.
- Further research is needed to fully elucidate the role of XPD variants in DNA repair and disease susceptibility.
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