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.

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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