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Updated: Aug 22, 2026

Quantification of three DNA Lesions by Mass Spectrometry and Assessment of Their Levels in Tissues of Mice Exposed to Ambient Fine Particulate Matter
Published on: May 29, 2019
Oxidative DNA damage and disease: induction, repair and significance
Mark D Evans1, Miral Dizdaroglu, Marcus S Cooke
1Oxidative Stress Group, Department of Clinical Biochemistry, University of Leicester, Leicester Royal Infirmary, University Hospitals of Leicester NHS Trust, LE2 7LX, UK.
Abstract:
The generation of reactive oxygen species may be both beneficial to cells, performing a function in inter- and intracellular signalling, and detrimental, modifying cellular biomolecules, accumulation of which has been associated with numerous diseases. Of the molecules subject to oxidative modification, DNA has received the greatest attention, with biomarkers of exposure and effect closest to validation. Despite nearly a quarter of a century of study, and a large number of base- and sugar-derived DNA lesions having been identified, the majority of studies have focussed upon the guanine modification, 7,8-dihydro-8-oxo-2'-deoxyguanosine (8-OH-dG). For the most part, the biological significance of other lesions has not, as yet, been investigated. In contrast, the description and characterisation of enzyme systems responsible for repairing oxidative DNA base damage is growing rapidly, being the subject of intense study. However, there remain notable gaps in our knowledge of which repair proteins remove which lesions, plus, as more lesions identified, new processes/substrates need to be determined. There are many reports describing elevated levels of oxidatively modified DNA lesions, in various biological matrices, in a plethora of diseases; however, for the majority of these the association could merely be coincidental, and more detailed studies are required. Nevertheless, even based simply upon reports of studies investigating the potential role of 8-OH-dG in disease, the weight of evidence strongly suggests a link between such damage and the pathogenesis of disease. However, exact roles remain to be elucidated.
Insights
Reactive oxygen species can harm cells, leading to DNA damage like 8-oxo-guanine (8-OH-dG). While this damage is linked to disease, its exact role and repair mechanisms require further investigation.
Area of Science:
- Biochemistry
- Molecular Biology
- Genetics
Background:
- Reactive oxygen species (ROS) play dual roles in cellular signaling and damage.
- Oxidative DNA damage, particularly to guanine (forming 8-oxo-guanine or 8-OH-dG), is a significant area of study.
- Numerous DNA lesions have been identified, but focus remains primarily on 8-OH-dG.
Purpose of the Study:
- To review the current understanding of oxidative DNA damage and repair.
- To highlight the biological significance of various DNA lesions beyond 8-OH-dG.
- To emphasize the need for further research into the roles of DNA repair proteins and lesion-disease associations.
Main Methods:
- Literature review of studies on oxidative DNA damage and repair mechanisms.
- Analysis of research focusing on 7,8-dihydro-8-oxo-2'-deoxyguanosine (8-OH-dG) in disease pathogenesis.
- Identification of knowledge gaps in DNA repair pathways and lesion characterization.
Main Results:
- While 8-OH-dG is the most studied lesion, the biological significance of other oxidative DNA modifications remains largely unexplored.
- Research on DNA repair enzyme systems is advancing, but specific substrate-protein interactions are not fully elucidated.
- Evidence suggests a strong association between 8-OH-dG and disease development, though causal links require more study.
Conclusions:
- Further research is needed to understand the biological roles of diverse oxidative DNA lesions.
- Elucidating the precise functions of DNA repair proteins in removing specific lesions is crucial.
- More detailed studies are required to confirm the role of oxidative DNA damage in various disease pathologies.
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