XRCC3 and XPD/ERCC2 single nucleotide polymorphisms and the risk of cancer: a HuGE review
Maurizio Manuguerra1, Federica Saletta, Margaret R Karagas
1Section of Epidemiology, ISI Foundation, Torino, Italy.
Abstract:
Hundreds of polymorphisms in DNA repair genes have been identified; however, for many of these polymorphisms, the impact on repair phenotype and cancer susceptibility remains uncertain. In this review, the authors focused on the x-ray repair cross-complementing protein group 3 (XRCC3) and xeroderma pigmentosum group D (XPD)/excision repair cross-complementing rodent repair deficiency (ERCC2) genes, because they are among the most extensively studied but no final conclusion has yet been drawn about their role in cancer occurrence. XRCC3 participates in DNA double-strand break/recombinational repair through homologous recombination to maintain chromosome stability. XPD/ERCC2 is a helicase involved in the nucleotide excision repair pathway, which recognizes and repairs many structurally unrelated lesions, such as bulky adducts and thymidine dimers. The authors identified a sufficient number of epidemiologic studies on cancer to perform meta-analyses for XPD/ERCC2 variants in codons 156, 312, and 751 and XRCC3 variants in codon 241. The authors evaluated all cancer sites to investigate whether DNA repair is likely to take place in a rather nonspecific manner for different carcinogens and different cancers. For the most part, the authors found no association between these genes and the cancer sites investigated, except for some statistically significant associations between XPD/ERCC2 single nucleotide polymorphisms and skin, breast, and lung cancers.
Insights
Polymorphisms in DNA repair genes XRCC3 and XPD/ERCC2 show limited association with overall cancer risk. However, XPD/ERCC2 variants were linked to increased risk for skin, breast, and lung cancers.
Area of Science:
- Genetics
- Molecular Biology
- Cancer Research
Background:
- Numerous DNA repair gene polymorphisms exist, but their impact on cancer susceptibility is often unclear.
- The x-ray repair cross-complementing protein group 3 (XRCC3) and xeroderma pigmentosum group D (XPD)/excision repair cross-complementing rodent repair deficiency (ERCC2) genes are crucial for DNA repair but their cancer associations remain debated.
Purpose of the Study:
- To investigate the association between specific polymorphisms in XRCC3 and XPD/ERCC2 genes and cancer susceptibility.
- To determine if DNA repair gene variants play a role in cancer development across various sites and carcinogens.
Main Methods:
- Meta-analysis of epidemiologic studies focusing on XRCC3 codon 241 and XPD/ERCC2 codons 156, 312, and 751 variants.
- Evaluation of associations across all cancer sites to assess the specificity of DNA repair in cancer development.
Main Results:
- Most investigated polymorphisms in XRCC3 and XPD/ERCC2 showed no significant association with cancer risk.
- Statistically significant associations were observed between XPD/ERCC2 single nucleotide polymorphisms and increased risk for skin, breast, and lung cancers.
Conclusions:
- The study suggests limited overall impact of common XRCC3 and XPD/ERCC2 polymorphisms on cancer susceptibility.
- Specific XPD/ERCC2 variants may contribute to the risk of developing skin, breast, and lung cancers, warranting further investigation.
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