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Updated: Jun 10, 2026

Visualizing and Quantifying Endonuclease-Based Site-Specific DNA Damage
Published on: August 21, 2021
Base excision repair and lesion-dependent subpathways for repair of oxidative DNA damage
David Svilar1, Eva M Goellner, Karen H Almeida
1Department of Pharmacology & Chemical Biology, University of Pittsburgh School of Medicine, Pittsburgh, PA 15213, USA.
Abstract:
Nuclear and mitochondrial genomes are under continuous assault by a combination of environmentally and endogenously derived reactive oxygen species, inducing the formation and accumulation of mutagenic, toxic, and/or genome-destabilizing DNA lesions. Failure to resolve these lesions through one or more DNA-repair processes is associated with genome instability, mitochondrial dysfunction, neurodegeneration, inflammation, aging, and cancer, emphasizing the importance of characterizing the pathways and proteins involved in the repair of oxidative DNA damage. This review focuses on the repair of oxidative damage-induced lesions in nuclear and mitochondrial DNA mediated by the base excision repair (BER) pathway in mammalian cells. We discuss the multiple BER subpathways that are initiated by one of 11 different DNA glycosylases of three subtypes: (a) bifunctional with an associated β-lyase activity; (b) monofunctional; and (c) bifunctional with an associated β,δ-lyase activity. These three subtypes of DNA glycosylases all initiate BER but yield different chemical intermediates and hence different BER complexes to complete repair. Additionally, we briefly summarize alternate repair events mediated by BER proteins and the role of BER in the repair of mitochondrial DNA damage induced by ROS. Finally, we discuss the relation of BER and oxidative DNA damage in the onset of human disease.
Insights
Oxidative DNA damage threatens genomes. Base excision repair (BER) pathways are crucial for fixing these lesions in nuclear and mitochondrial DNA, preventing diseases like cancer and aging.
Area of Science:
- Molecular Biology
- Genetics
- Biochemistry
Background:
- Reactive oxygen species (ROS) cause DNA damage in nuclear and mitochondrial genomes.
- Unrepaired DNA lesions are linked to aging, cancer, and neurodegeneration.
Purpose of the Study:
- To review the base excision repair (BER) pathway's role in repairing oxidative DNA damage.
- To explore BER's function in both nuclear and mitochondrial DNA.
Main Methods:
- Focus on DNA glycosylases initiating BER.
- Discussion of different BER subpathways and their intermediates.
- Summary of BER's role in mitochondrial DNA repair.
Main Results:
- BER involves multiple subpathways initiated by distinct DNA glycosylases.
- Different glycosylase subtypes generate unique intermediates for repair.
- BER proteins also mediate alternate repair events.
Conclusions:
- The base excision repair pathway is essential for maintaining genome integrity against oxidative stress.
- Dysregulation of BER and oxidative DNA damage contribute to human diseases.
- Understanding BER is vital for addressing age-related and degenerative diseases.
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