Biomarkers of oxidative damage to DNA and repair
Steffen Loft1, Pernille Høgh Danielsen, Lone Mikkelsen
1Department of Environmental Health, University of Copenhagen, Øster Farimagsgade 5A, DK-1014 Copenhagen K, Denmark. s.loft@pubhealth.ku.dk
Abstract:
Oxidative-stress-induced damage to DNA includes a multitude of lesions, many of which are mutagenic and have multiple roles in cancer and aging. Many lesions have been characterized by MS-based methods after extraction and digestion of DNA. These preparation steps may cause spurious base oxidation, which is less likely to occur with methods such as the comet assay, which are based on nicking of the DNA strand at modified bases, but offer less specificity. The European Standards Committee on Oxidative DNA Damage has concluded that the true levels of the most widely studied lesion, 8-oxodG (8-oxo-7,8-dihydro-2'-deoxyguanosine), in cellular DNA is between 0.5 and 5 lesions per 10(6) dG bases. Base excision repair of oxidative damage to DNA can be assessed by nicking assays based on oligonucleotides with lesions or the comet assay, by mRNA expression levels or, in the case of, e.g., OGG1 (8-oxoguanine DNA glycosylase 1), responsible for repair of 8-oxodG, by genotyping. Products of repair in DNA or the nucleotide pool, such as 8-oxodG, excreted into the urine can be assessed by MS-based methods and generally reflects the rate of damage. Experimental and population-based studies indicate that many environmental factors, including particulate air pollution, cause oxidative damage to DNA, whereas diets rich in fruit and vegetables or antioxidant supplements may reduce the levels and enhance repair. Urinary excretion of 8-oxodG, genotype and expression of OGG1 have been associated with risk of cancer in cohort settings, whereas altered levels of damage, repair or urinary excretion in case-control settings may be a consequence rather than the cause of the disease.
Insights
Oxidative DNA damage, like 8-oxodG, is linked to cancer and aging. Environmental factors increase damage, while diet and antioxidants may reduce it, impacting repair mechanisms and disease risk.
Area of Science:
- Molecular Biology
- Environmental Health
- Genetics
Background:
- Oxidative stress causes DNA damage, including mutagenic lesions implicated in cancer and aging.
- Current methods like MS-based assays may introduce artifacts, while assays like the comet assay lack specificity.
- The true level of 8-oxodG in cellular DNA is estimated to be 0.5-5 lesions per 10^6 dG bases.
Purpose of the Study:
- To review methods for assessing oxidative DNA damage and repair.
- To discuss the role of environmental factors and lifestyle on DNA damage.
- To explore the association of DNA damage markers with cancer risk.
Main Methods:
- Characterization of DNA lesions using MS-based methods and comet assays.
- Assessment of base excision repair via nicking assays, mRNA expression, and genotyping (e.g., OGG1).
- Measurement of urinary 8-oxodG excretion using MS-based methods.
Main Results:
- Particulate air pollution is linked to increased oxidative DNA damage.
- Diets rich in fruits/vegetables and antioxidant supplements may decrease damage and enhance repair.
- Urinary 8-oxodG, OGG1 genotype, and expression are associated with cancer risk in cohort studies.
Conclusions:
- Oxidative DNA damage is a significant factor in aging and cancer.
- Environmental exposures and lifestyle choices modulate DNA damage and repair.
- Markers of DNA damage and repair may serve as indicators of cancer risk, though causality in case-control studies is complex.
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