XRCC1 and base excision repair balance in response to nitric oxide

James T Mutamba1, David Svilar, Somsak Prasongtanakij

  • 1Department of Biological Engineering, Massachusetts Institute of Technology, Cambridge, MA, United States.

DNA Repair
|November 2, 2011
PubMed

Insights

Reactive oxygen and nitrogen species (RONs) cause DNA damage. This study shows X-ray repair cross-complementing group 1 (XRCC1) facilitates DNA repair of nitric oxide (NO)-induced lesions, but its role depends on the DNA glycosylase AAG level.

Area of Science:

  • DNA repair mechanisms
  • Genomic stability and cancer
  • Oxidative stress and DNA damage

Background:

  • Reactive oxygen and nitrogen species (RONs) contribute to DNA damage and cancer.
  • Base excision repair (BER) removes endogenous DNA lesions, but its role in RONs-induced damage is unclear.
  • X-ray repair cross-complementing group 1 (XRCC1) is a scaffold protein in BER, and its polymorphisms are linked to cancer risk.

Purpose of the Study:

  • To investigate the role of XRCC1 in mitigating genotoxicity induced by RONs.
  • To determine how XRCC1 influences the repair of DNA base lesions caused by nitric oxide (NO).
  • To understand the interplay between XRCC1, AAG, and cellular sensitivity to NO-induced DNA damage.

Main Methods:

  • Utilized Chinese hamster ovary (CHO) and human glioblastoma cell lines with varying BER protein expression.
  • Exposed cells to peroxynitrite (ONOO(-)) donor SIN-1 and gaseous NO.
  • Assessed cytotoxicity, DNA single-strand breaks (SSBs), and in vitro DNA lesion removal using molecular beacon assays.

Main Results:

  • XRCC1-null cells showed slightly increased sensitivity to SIN-1 but not to NO.
  • XRCC1 was found to facilitate AAG-initiated excision of NO-induced DNA lesions: 1,N(6)-ethenoadenine and hypoxanthine.
  • Overexpression of AAG rendered XRCC1-deficient cells sensitive to NO-induced DNA damage.

Conclusions:

  • DNA glycosylase AAG is crucial for repairing NO-induced DNA damage.
  • XRCC1's role in modulating sensitivity to RONs is dependent on cellular AAG levels.
  • Evaluating XRCC1's impact on cancer risk requires considering the expression of other BER pathway components, like AAG.

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