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Updated: Jun 11, 2026

Visualizing and Quantifying Endonuclease-Based Site-Specific DNA Damage
Published on: August 21, 2021
Involvement of oxidatively damaged DNA and repair in cancer development and aging
Barbara Tudek1, Alicja Winczura, Justyna Janik
1Institute of Biochemistry and Biophysics, Polish Academy of Sciences, Warsaw, Institute of Genetics and Biotechnology,Warsaw University, Poland. tudek@ibb.waw.pl
Abstract:
DNA damage and DNA repair may mediate several cellular processes, like replication and transcription, mutagenesis and apoptosis and thus may be important factors in the development and pathology of an organism, including cancer. DNA is constantly damaged by reactive oxygen species (ROS) and reactive nitrogen species (RNS) directly and also by products of lipid peroxidation (LPO), which form exocyclic adducts to DNA bases. A wide variety of oxidatively-generated DNA lesions are present in living cells. 8-oxoguanine (8-oxoGua) is one of the best known DNA lesions due to its mutagenic properties. Among LPO-derived DNA base modifications the most intensively studied are ethenoadenine and ethenocytosine, highly miscoding DNA lesions considered as markers of oxidative stress and promutagenic DNA damage. Although at present it is impossible to directly answer the question concerning involvement of oxidatively damaged DNA in cancer etiology, it is likely that oxidatively modified DNA bases may serve as a source of mutations that initiate carcinogenesis and are involved in aging (i.e. they may be causal factors responsible for these processes). To counteract the deleterious effect of oxidatively damaged DNA, all organisms have developed several DNA repair mechanisms. The efficiency of oxidatively damaged DNA repair was frequently found to be decreased in cancer patients. The present work reviews the basis for the biological significance of DNA damage, particularly effects of 8-oxoGua and ethenoadduct occurrence in DNA in the aspect of cancer development, drawing attention to the multiplicity of proteins with repair activities.
Insights
Oxidatively damaged DNA, including 8-oxoguanine, is linked to cancer and aging. DNA repair mechanisms are crucial, but their efficiency often decreases in cancer patients, highlighting the significance of DNA repair in disease pathology.
Area of Science:
- Molecular Biology
- Genetics
- Biochemistry
Background:
- DNA damage from reactive oxygen and nitrogen species (ROS/RNS) and lipid peroxidation (LPO) generates lesions like 8-oxoguanine, ethenoadenine, and ethenocytosine.
- These oxidatively modified DNA bases are mutagenic, miscoding, and implicated in aging and cancer development.
- DNA repair mechanisms counteract DNA damage, but their efficiency can be compromised in disease states.
Purpose of the Study:
- To review the biological significance of DNA damage, focusing on 8-oxoguanine and ethenoadducts in DNA.
- To explore the role of oxidatively damaged DNA in cancer etiology and aging.
- To highlight the importance of DNA repair proteins in counteracting DNA damage.
Main Methods:
- Literature review of studies on DNA damage, repair, and their roles in cellular processes.
- Analysis of the mutagenic and miscoding properties of specific DNA lesions.
- Examination of the link between DNA repair efficiency and cancer pathology.
Main Results:
- Oxidatively generated DNA lesions, such as 8-oxoguanine and ethenoadducts, are prevalent and contribute to mutations.
- These DNA modifications are considered markers of oxidative stress and potential initiators of carcinogenesis.
- Reduced DNA repair efficiency in cancer patients underscores the critical role of these pathways in disease.
Conclusions:
- Oxidatively damaged DNA bases are likely causal factors in carcinogenesis and aging.
- The multiplicity of DNA repair proteins is essential for maintaining genomic integrity.
- Understanding DNA damage and repair is vital for comprehending cancer development and aging processes.
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