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XRCC1 and DNA polymerase beta in cellular protection against cytotoxic DNA single-strand breaks
Julie K Horton1, Mary Watson, Donna F Stefanick
1Laboratory of Structural Biology, NIEHS, National Institutes of Health, Research Triangle Park, NC 27709, USA.
Abstract:
Single-strand breaks (SSBs) can occur in cells either directly, or indirectly following initiation of base excision repair (BER). SSBs generally have blocked termini lacking the conventional 5'-phosphate and 3'-hydroxyl groups and require further processing prior to DNA synthesis and ligation. XRCC1 is devoid of any known enzymatic activity, but it can physically interact with other proteins involved in all stages of the overlapping SSB repair and BER pathways, including those that conduct the rate-limiting end-tailoring, and in many cases can stimulate their enzymatic activities. XRCC1(-/-) mouse fibroblasts are most hypersensitive to agents that produce DNA lesions repaired by monofunctional glycosylase-initiated BER and that result in formation of indirect SSBs. A requirement for the deoxyribose phosphate lyase activity of DNA polymerase beta (pol beta) is specific to this pathway, whereas pol beta is implicated in gap-filling during repair of many types of SSBs. Elevated levels of strand breaks, and diminished repair, have been demonstrated in MMS-treated XRCC1(-/-), and to a lesser extent in pol beta(-/-) cell lines, compared with wild-type cells. Thus a strong correlation is observed between cellular sensitivity to MMS and the ability of cells to repair MMS-induced damage. Exposure of wild-type and pol beta(-/-) cells to an inhibitor of PARP activity dramatically potentiates MMS-induced cytotoxicity. XRCC1(-/-) cells are also sensitized by PARP inhibition demonstrating that PARP-mediated poly(ADP-ribosyl)ation plays a role in modulation of cytotoxicity beyond recruitment of XRCC1 to sites of DNA damage.
Insights
DNA repair pathways involving XRCC1 and DNA polymerase beta are crucial for repairing single-strand breaks (SSBs). PARP inhibition potentiates cytotoxicity, highlighting its role in DNA damage response beyond XRCC1 recruitment.
Area of Science:
- Molecular Biology
- Genetics
- Biochemistry
Background:
- Single-strand breaks (SSBs) are DNA lesions crucial for cellular integrity.
- XRCC1 protein interacts with DNA repair factors, influencing base excision repair (BER) and SSB repair pathways.
- XRCC1(-/-) cells exhibit hypersensitivity to agents causing indirect SSBs via BER.
Purpose of the Study:
- To investigate the roles of XRCC1 and DNA polymerase beta (pol beta) in repairing SSBs.
- To determine the impact of PARP inhibition on cytotoxicity induced by DNA damaging agents.
Main Methods:
- Cellular sensitivity assays using methyl methanesulfonate (MMS) in XRCC1(-/-) and pol beta(-/-) fibroblasts.
- Assessment of DNA strand breaks and repair efficiency.
- Evaluation of cytotoxicity following PARP inhibition in wild-type and mutant cell lines.
Main Results:
- XRCC1(-/-) and pol beta(-/-) cells showed elevated strand breaks and diminished repair after MMS treatment.
- Cellular sensitivity to MMS correlated with repair capacity.
- PARP inhibition potentiated MMS-induced cytotoxicity in wild-type, pol beta(-/-), and XRCC1(-/-) cells.
Conclusions:
- XRCC1 and pol beta are essential for efficient repair of MMS-induced DNA damage.
- PARP-mediated poly(ADP-ribosyl)ation modulates cytotoxicity, extending beyond XRCC1 recruitment.
- These findings elucidate critical mechanisms in DNA damage response and repair.
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