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Updated: Jun 19, 2026

Detection of DNA Breaks in Dividing Human Cells by Neutral Comet Assay
Published on: August 23, 2024
Limiting the persistence of a chromosome break diminishes its mutagenic potential
Nicole Bennardo1, Amanda Gunn, Anita Cheng
1Department of Cancer Biology, Division of Radiation Biology, Beckman Research Institute of the City of Hope, Duarte, California, USA.
Abstract:
To characterize the repair pathways of chromosome double-strand breaks (DSBs), one approach involves monitoring the repair of site-specific DSBs generated by rare-cutting endonucleases, such as I-SceI. Using this method, we first describe the roles of Ercc1, Msh2, Nbs1, Xrcc4, and Brca1 in a set of distinct repair events. Subsequently, we considered that the outcome of such assays could be influenced by the persistent nature of I-SceI-induced DSBs, in that end-joining (EJ) products that restore the I-SceI site are prone to repeated cutting. To address this aspect of repair, we modified I-SceI-induced DSBs by co-expressing I-SceI with a non-processive 3' exonuclease, Trex2, which we predicted would cause partial degradation of I-SceI 3' overhangs. We find that Trex2 expression facilitates the formation of I-SceI-resistant EJ products, which reduces the potential for repeated cutting by I-SceI and, hence, limits the persistence of I-SceI-induced DSBs. Using this approach, we find that Trex2 expression causes a significant reduction in the frequency of repair pathways that result in substantial deletion mutations: EJ between distal ends of two tandem DSBs, single-strand annealing, and alternative-NHEJ. In contrast, Trex2 expression does not inhibit homology-directed repair. These results indicate that limiting the persistence of a DSB causes a reduction in the frequency of repair pathways that lead to significant genetic loss. Furthermore, we find that individual genetic factors play distinct roles during repair of non-cohesive DSB ends that are generated via co-expression of I-SceI with Trex2.
Insights
Limiting the persistence of DNA double-strand breaks (DSBs) using Trex2 reduces deletion mutations from pathways like alternative-NHEJ. Homology-directed repair remains unaffected, highlighting Trex2
Area of Science:
- Molecular Biology
- Genetics
- DNA Repair Mechanisms
Background:
- Chromosome double-strand breaks (DSBs) are critical DNA lesions repaired through various pathways.
- Site-specific DSBs induced by rare-cutting endonucleases (e.g., I-SceI) are used to study repair.
- The persistence of DSBs can influence observed repair pathway outcomes.
Purpose of the Study:
- To characterize DNA double-strand break (DSB) repair pathways.
- To investigate the role of Trex2 in modifying DSB ends and influencing repair outcomes.
- To assess the impact of limiting DSB persistence on specific repair pathways.
Main Methods:
- Generated site-specific DSBs using the I-SceI endonuclease.
- Co-expressed I-SceI with the 3' exonuclease Trex2 to modify DSB overhangs.
- Monitored repair events and analyzed mutation frequencies associated with different repair pathways.
Main Results:
- Trex2 expression created I-SceI-resistant DSBs, reducing DSB persistence.
- Trex2 significantly decreased deletion mutations from end-joining (EJ) between tandem DSBs, single-strand annealing, and alternative-NHEJ.
- Homology-directed repair (HDR) efficiency was not inhibited by Trex2 expression.
Conclusions:
- Limiting DSB persistence curtails repair pathways that cause significant genetic loss.
- Trex2 is a valuable tool for dissecting DSB repair pathways by reducing reliance on persistent breaks.
- Individual genetic factors exhibit distinct roles in repairing non-cohesive DSB ends generated with Trex2.
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