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The role of XPC: implications in cancer and oxidative DNA damage
Joost P M Melis1, Mirjam Luijten, Leon H F Mullenders
1National Institute of Public Health and the Environment, Laboratory for Health Protection Research, Bilthoven, The Netherlands.
Abstract:
The accumulation of DNA damage is a slow but hazardous phenomenon that may lead to cell death, accelerated aging features and cancer. One of the most versatile and important defense mechanisms against the accumulation of DNA damage is nucleotide excision repair (NER), in which the Xeroderma pigmentosum group C (XPC) protein plays a prominent role. NER can be divided into global genome repair (GG-NER) and transcription coupled repair (TC-NER). XPC is a key factor in GG-NER where it functions in DNA damage recognition and after which the repair machinery is recruited to eliminate the DNA damage. Defective XPC functioning has been shown to result in a cancer prone phenotype, in human as well as in mice. Mutation accumulation in XPC deficient mice is accelerated and increased, resulting in an increased tumor incidence. More recently XPC has also been linked to functions outside of NER since XPC deficient mice show a divergent tumor spectrum compared to other NER deficient mouse models. Multiple in vivo and in vitro experiments indicate that XPC appears to be involved in the initiation of several DNA damage-induced cellular responses. XPC seems to function in the removal of oxidative DNA damage, redox homeostasis and cell cycle control. We hypothesize that this combination of increased oxidative DNA damage sensitivity, disturbed redox homeostasis together with inefficient cell cycle control mechanisms are causes of the observed increased cancer susceptibility in oxygen exposed tissues. Such a phenotype is absent in other NER-deficient mice, including Xpa.
Insights
The Xeroderma pigmentosum group C (XPC) protein is crucial for DNA repair and preventing cancer. XPC deficiency leads to increased DNA damage, oxidative stress, and cell cycle issues, heightening cancer risk, especially in oxygen-exposed tissues.
Area of Science:
- Molecular Biology
- Genetics
- Cancer Research
Background:
- DNA damage accumulation can cause cell death, aging, and cancer.
- Nucleotide excision repair (NER) is a key defense mechanism against DNA damage.
- The Xeroderma pigmentosum group C (XPC) protein is vital for global genome repair (GG-NER), a sub-pathway of NER.
Purpose of the Study:
- To investigate the role of XPC in DNA damage recognition and repair.
- To explore XPC's functions beyond its established role in NER.
- To understand the molecular mechanisms underlying XPC's contribution to cancer susceptibility.
Main Methods:
- Analysis of XPC-deficient mice models.
- In vivo and in vitro experiments to assess DNA damage response.
- Comparative studies with other NER-deficient mouse models (e.g., Xpa).
Main Results:
- XPC deficiency accelerates mutation accumulation and increases tumor incidence in mice.
- XPC-deficient mice exhibit a distinct tumor spectrum compared to other NER-deficient models.
- Evidence suggests XPC is involved in oxidative DNA damage removal, redox homeostasis, and cell cycle control.
Conclusions:
- XPC plays a critical role in maintaining genomic stability and preventing cancer.
- Beyond NER, XPC influences cellular responses to DNA damage, including oxidative stress and cell cycle regulation.
- The combined effects of increased oxidative DNA damage sensitivity, impaired redox homeostasis, and defective cell cycle control in XPC-deficient cells contribute to heightened cancer susceptibility.
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