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

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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