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Updated: Aug 8, 2026

Comet Assay as an Indirect Measure of Systemic Oxidative Stress
Published on: May 22, 2015
Antioxidant intervention studies related to DNA damage, DNA repair and gene expression
1Institute of Public Health, The Panum Institute, Copenhagen, Denmark. s.loft@pubhealth.ku.dk
Abstract:
In human cells oxidatively modified nucleobases can be measured in the DNA and strand breaks can be detected by the Comet assay, optionally with the use of repair enzymes introducing breaks at oxidized bases. Oxidized bases and nucleosides from DNA repair, the nucleotide pool and cell turnover can be measured in urine. The excretion rate represents the average rate of damage in the body, whereas the level of oxidized bases in DNA is a concentration measurement in the specific cells. The expression of genes relevant for the defence against oxidative DNA damage, antioxidant and DNA repair enzymes can be assessed at the mRNA, protein and activity level. Functional assays can involve susceptibility to, and disappearance of, damage induced ex vivo in lymphocytes. Vitamins C and E, beta-carotene, coenzyme Q as well as various vegetables, fruit and carotenoid rich products, have been assessed with biomarkers mainly including damage in lymphocytes DNA by Comet and chemical assays and urinary excretion of oxidized bases and nucleosides. The basal levels as well as the reported effects of the interventions have been rather variable, possibly reflecting differences in the populations, regimens, functional correlates of the biomarkers as well as between laboratories and assays. However, the data suggest that a depleted state due to nutritional deficiency and/or an increased oxidative stress might facilitate demonstration of protective effects of antioxidants with respect to DNA damage. The effect of antioxidants on gene expression has been little studied in humans and only at the activity and protein level.
Insights
Biomarkers can measure oxidative DNA damage in human cells and urine. Antioxidant interventions show variable effects, but may be more apparent in individuals with nutritional deficiencies or high oxidative stress.
Area of Science:
- Biochemistry
- Molecular Biology
- Nutritional Science
Background:
- Oxidative DNA damage is a significant factor in human health.
- Biomarkers are crucial for assessing this damage and the efficacy of interventions.
Purpose of the Study:
- To review methods for measuring oxidative DNA damage in humans.
- To evaluate the impact of antioxidant interventions on DNA damage and related biomarkers.
Main Methods:
- Measurement of oxidized nucleobases and strand breaks in DNA (Comet assay).
- Analysis of urinary oxidized bases and nucleosides.
- Assessment of gene expression for antioxidant and DNA repair enzymes.
- Ex vivo functional assays using lymphocytes.
Main Results:
- Biomarker data for oxidative DNA damage and antioxidant effects are variable.
- Nutritional status and oxidative stress levels influence the observed effects of antioxidants.
- Antioxidant effects on human gene expression remain understudied.
Conclusions:
- Standardized methods and population-specific considerations are needed for reliable biomarker interpretation.
- Antioxidants may offer protective effects against DNA damage, particularly in vulnerable populations.
- Further research is required on the impact of antioxidants on gene expression in humans.
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