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Published on: September 5, 2017
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.
Abstract:
Inflammation associated reactive oxygen and nitrogen species (RONs), including peroxynitrite (ONOO(-)) and nitric oxide (NO), create base lesions that potentially play a role in the toxicity and large genomic rearrangements associated with many malignancies. Little is known about the role of base excision repair (BER) in removing these endogenous DNA lesions. Here, we explore the role of X-ray repair cross-complementing group 1 (XRCC1) in attenuating RONs-induced genotoxicity. XRCC1 is a scaffold protein critical for BER for which polymorphisms modulate the risk of cancer. We exploited CHO and human glioblastoma cell lines engineered to express varied levels of BER proteins to study XRCC1. Cytotoxicity and the levels of DNA repair intermediates (single-strand breaks; SSB) were evaluated following exposure of the cells to the ONOO(-) donor, SIN-1, and to gaseous NO. XRCC1 null cells were slightly more sensitive to SIN-1 than wild-type cells. We used small-scale bioreactors to expose cells to NO and found that XRCC1-deficient CHO cells were not sensitive. However, using a molecular beacon assay to test lesion removal in vitro, we found that XRCC1 facilitates AAG-initiated excision of two key NO-induced DNA lesions: 1,N(6)-ethenoadenine and hypoxanthine. Furthermore, overexpression of AAG rendered XRCC1-deficient cells sensitive to NO-induced DNA damage. These results show that AAG is a key glycosylase for BER of NO-induced DNA damage and that XRCC1's role in modulating sensitivity to RONs is dependent upon the cellular level of AAG. This demonstrates the importance of considering the expression of other components of the BER pathway when evaluating the impact of XRCC1 polymorphisms on cancer risk.
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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