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Updated: Jan 5, 2026

Visualizing and Quantifying Endonuclease-Based Site-Specific DNA Damage
Published on: August 21, 2021
Chromatin and other obstacles to base excision repair: potential roles in carcinogenesis
Paul J Caffrey1, Sarah Delaney1
1Department of Chemistry, Brown University, Providence, RI.
Abstract:
DNA is comprised of chemically reactive nucleobases that exist under a constant barrage from damaging agents. Failure to repair chemical modifications to these nucleobases can result in mutations that can cause various diseases, including cancer. Fortunately, the base excision repair (BER) pathway can repair modified nucleobases and prevent these deleterious mutations. However, this pathway can be hindered through several mechanisms. For instance, mutations to the enzymes in the BER pathway have been identified in cancers. Biochemical characterisation of these mutants has elucidated various mechanisms that inhibit their activity. Furthermore, the packaging of DNA into chromatin poses another obstacle to the ability of BER enzymes to function properly. Investigations of BER in the base unit of chromatin, the nucleosome core particle (NCP), have revealed that the NCP acts as a complex substrate for BER enzymes. The constituent proteins of the NCP, the histones, also have variants that can further impact the structure of the NCP and may modulate access of enzymes to the packaged DNA. These histone variants have also displayed significant clinical effects both in carcinogenesis and patient prognosis. This review focuses on the underlying molecular mechanisms that present obstacles to BER and the relationship of these obstacles to cancer. In addition, several chemotherapeutics induce DNA damage that can be repaired by the BER pathway and understanding obstacles to BER can inform how resistance and/or sensitivity to these therapies may occur. With the understanding of these molecular mechanisms, current chemotherapeutic treatment regiments may be improved, and future therapies developed.
Insights
DNA repair pathways like base excision repair (BER) prevent mutations causing cancer. Obstacles to BER, including DNA packaging and enzyme mutations, are linked to cancer development and chemotherapy resistance.
Area of Science:
- Molecular Biology
- Biochemistry
- Genetics
Background:
- DNA is constantly exposed to damaging agents, leading to nucleobase modifications.
- Failure to repair these modifications can cause mutations and diseases like cancer.
- The base excision repair (BER) pathway is crucial for repairing damaged nucleobases.
Purpose of the Study:
- To review the molecular mechanisms that impede the base excision repair (BER) pathway.
- To explore the link between BER obstacles, cancer, and chemotherapy.
- To inform potential improvements in cancer treatment strategies.
Main Methods:
- Review of existing literature on DNA repair, chromatin structure, and cancer genetics.
- Biochemical characterization of BER enzyme mutants.
- Investigation of BER within the nucleosome core particle (NCP) structure.
Main Results:
- Mutations in BER enzymes can inhibit their activity, contributing to cancer.
- DNA packaging into nucleosomes (NCPs) presents a significant barrier to BER enzymes.
- Histone variants within NCPs can modulate enzyme access and impact cancer prognosis.
Conclusions:
- Understanding BER pathway impediments is vital for cancer research.
- Obstacles to BER influence cancer development and patient outcomes.
- Insights into BER mechanisms can guide the development of more effective cancer therapies and overcome treatment resistance.
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