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Published on: November 11, 2015
Slow accumulation of mutations in Xpc-/- mice upon induction of oxidative stress
Joost P M Melis1, Raoul V Kuiper, Edwin Zwart
1National Institute for Public Health and the Environment, Center for Health Protection, Bilthoven 3721 MA, The Netherlands; Leiden University Medical Center, Department of Toxicogenetics, Leiden 2300 RC, The Netherlands.
Abstract:
XPC is one of the key DNA damage recognition proteins in the global genome repair route of the nucleotide excision repair (NER) pathway. Previously, we demonstrated that NER-deficient mouse models Xpa(-/-) and Xpc(-/-) exhibit a divergent spontaneous tumor spectrum and proposed that XPC might be functionally involved in the defense against oxidative DNA damage. Others have mechanistically dissected several functionalities of XPC to oxidative DNA damage sensitivity using in vitro studies. XPC has been linked to regulation of base excision repair (BER) activity, redox homeostasis and recruitment of ATM and ATR to damage sites, thereby possibly regulating cell cycle checkpoints and apoptosis. XPC has additionally been implicated in recognition of bulky (e.g. cyclopurines) and non-bulky DNA damage (8-oxodG). However, the ultimate contribution of the XPC functionality in vivo in the oxidative DNA damage response and subsequent mutagenesis process remains unclear. Our study indicates that Xpc(-/-) mice, in contrary to Xpa(-/-) and wild type mice, have an increased mutational load upon induction of oxidative stress and that mutations arise in a slowly accumulative fashion. The effect of non-functional XPC in vivo upon oxidative stress exposure appears to have implications in mutagenesis, which can contribute to the carcinogenesis process. The levels and rate of mutagenesis upon oxidative stress correlate with previous findings that lung tumors in Xpc(-/-) mice overall arise late in the lifespan and that the incidence of internal tumors in XP-C patients is relatively low in comparison to skin cancer incidence.
Insights
Mice lacking the XPC protein show increased mutations from oxidative DNA damage, suggesting XPC plays a role in preventing cancer by limiting mutagenesis.
Area of Science:
- Molecular Biology
- Genetics
- Cancer Research
Background:
- The xeroderma pigmentosum C (XPC) protein is crucial for DNA repair via the nucleotide excision repair (NER) pathway.
- Previous studies suggest XPC's involvement in defending against oxidative DNA damage, but its in vivo role remains unclear.
- XPC has been linked to base excision repair (BER) regulation, redox homeostasis, and DNA damage signaling.
Purpose of the Study:
- To investigate the in vivo role of XPC in the oxidative DNA damage response and mutagenesis.
- To determine if XPC deficiency impacts mutational load under oxidative stress conditions.
- To elucidate the contribution of XPC to carcinogenesis through its effects on mutagenesis.
Main Methods:
- Utilized Xpc(-/-) and Xpa(-/-) mouse models alongside wild-type controls.
- Induced oxidative stress to assess DNA damage response and mutagenesis.
- Quantified mutational load and analyzed mutation accumulation rates.
Main Results:
- Xpc(-/-) mice exhibited a significantly increased mutational load compared to Xpa(-/-) and wild-type mice upon oxidative stress induction.
- Mutations in Xpc(-/-) mice accumulated slowly over time.
- The observed mutagenesis correlated with late-onset lung tumors in Xpc(-/-) mice.
Conclusions:
- XPC deficiency leads to increased mutagenesis under oxidative stress, highlighting its role in DNA damage tolerance.
- The findings suggest XPC's function in limiting oxidative stress-induced mutations contributes to preventing carcinogenesis.
- This research clarifies XPC's in vivo importance in the cellular defense against oxidative damage and associated mutagenesis.
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