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Updated: Jul 23, 2026

Quantitative, Real-time Analysis of Base Excision Repair Activity in Cell Lysates Utilizing Lesion-specific Molecular Beacons
Published on: August 6, 2012
Keynote: past, present, and future aspects of base excision repair
1ICRF Clare Hall Laboratories, South Mimms, Hertfordshire EN6 3LD, United Kingdom.
Abstract:
Covalent alterations of DNA bases, which may have promutagenic or cytotoxic effects, are major consequences of endogenous DNA damage caused by hydrolysis, reactive oxygen species, and several metabolites and coenzymes. A common strategy for initiation of DNA base excision repair (BER) involves a DNA glycosylase that binds the altered deoxynucleoside in an extrahelical position and catalyzes cleavage of the base-sugar bond. Subsequently, an AP endonuclease or AP lyase activity incises the abasic site, followed by short-patch gap-filling, excision of the base-free sugar-phosphate residue, and ligation. The initial work that resulted in the discovery of DNA glycosylases and AP endonucleases is briefly reviewed. In recent years, it has been shown that the latter steps of the BER pathway differ greatly between mammalian cells and microorganisms such as yeast and bacteria. Three distinct subpathways of BER occur in mammalian cells, and these have been individually reconstituted with purified enzymes. Gene knockout mice are now revealing specific roles and backup mechanisms for repair functions in murine cells, and the results in general are also applicable to human cells. Future developments in the field of base excision repair include definition by proteomics of all factors involved in handling many different types of DNA lesions, clarification of mechanisms of repair of chromatin at a high level of accuracy, manifestation of repair proteins as drug targets for cellular sensitization to ionizing radiation and anticancer medicines, and elucidation of cross-talk between the base excision repair factors and other cellular proteins involved in a variety of stress responses.
Insights
DNA base excision repair (BER) corrects endogenous DNA damage. Mammalian cells utilize distinct BER subpathways, with gene knockout mice aiding in understanding repair mechanisms and backup systems.
Area of Science:
- Molecular Biology
- Genetics
- Biochemistry
Background:
- Endogenous DNA damage from hydrolysis, reactive oxygen species, and metabolites can cause cytotoxic effects.
- DNA base excision repair (BER) initiates with DNA glycosylase binding altered bases and cleaving the base-sugar bond.
- Subsequent steps involve AP endonuclease/lyase activity, gap-filling, and ligation.
Purpose of the Study:
- To review the discovery of DNA glycosylases and AP endonucleases.
- To highlight the divergence in later BER pathway steps between mammalian cells and microorganisms.
- To present findings on distinct mammalian BER subpathways and insights from gene knockout mouse models.
Main Methods:
- Review of initial discoveries in DNA repair enzymes.
- Biochemical reconstitution of three distinct BER subpathways in mammalian cells.
- Analysis of gene knockout mice to elucidate in vivo repair functions.
Main Results:
- Mammalian cells exhibit three distinct base excision repair subpathways.
- Gene knockout mouse studies reveal specific repair functions and backup mechanisms.
- Results from murine models are generally applicable to human cells.
Conclusions:
- Mammalian DNA repair pathways, particularly BER, show significant complexity and variation.
- Understanding these pathways is crucial for human health and disease.
- Future research will focus on proteomics, chromatin repair, drug targets, and cross-talk with stress responses.
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