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Updated: May 14, 2026

Assessment of DNA Double Strand Break Repair Activity Using High-throughput and Quantitative Luminescence-Based Reporter Assays
Published on: June 14, 2024
Single-cell microarray enables high-throughput evaluation of DNA double-strand breaks and DNA repair inhibitors
David M Weingeist1, Jing Ge, David K Wood
1Department of Biological Engineering, Massachusetts Institute of Technology, Cambridge, MA, USA.
Abstract:
A key modality of non-surgical cancer management is DNA damaging therapy that causes DNA double-strand breaks that are preferentially toxic to rapidly dividing cancer cells. Double-strand break repair capacity is recognized as an important mechanism in drug resistance and is therefore a potential target for adjuvant chemotherapy. Additionally, spontaneous and environmentally induced DSBs are known to promote cancer, making DSB evaluation important as a tool in epidemiology, clinical evaluation and in the development of novel pharmaceuticals. Currently available assays to detect double-strand breaks are limited in throughput and specificity and offer minimal information concerning the kinetics of repair. Here, we present the CometChip, a 96-well platform that enables assessment of double-strand break levels and repair capacity of multiple cell types and conditions in parallel and integrates with standard high-throughput screening and analysis technologies. We demonstrate the ability to detect multiple genetic deficiencies in double-strand break repair and evaluate a set of clinically relevant chemical inhibitors of one of the major double-strand break repair pathways, non-homologous end-joining. While other high-throughput repair assays measure residual damage or indirect markers of damage, the CometChip detects physical double-strand breaks, providing direct measurement of damage induction and repair capacity, which may be useful in developing and implementing treatment strategies with reduced side effects.
Insights
The new CometChip platform allows for high-throughput assessment of DNA double-strand breaks (DSBs) and their repair. This technology can identify genetic deficiencies and evaluate drug inhibitors, aiding cancer treatment development.
Area of Science:
- Molecular Biology
- Genetics
- Cancer Research
Background:
- DNA double-strand breaks (DSBs) are crucial in cancer therapy and drug resistance.
- Current DSB detection methods lack throughput and specificity.
- Assessing DSB repair capacity is vital for cancer treatment strategies.
Purpose of the Study:
- To introduce the CometChip, a novel 96-well platform for high-throughput DSB assessment.
- To enable parallel evaluation of DSB levels and repair capacity across multiple cell types.
- To facilitate the development of novel pharmaceuticals and treatment strategies.
Main Methods:
- Development of the CometChip, a 96-well platform for DSB analysis.
- Integration with high-throughput screening and analysis technologies.
- Evaluation of genetic deficiencies in DSB repair and chemical inhibitors of non-homologous end-joining.
Main Results:
- The CometChip enables parallel assessment of DSB levels and repair capacity.
- Demonstrated detection of multiple genetic deficiencies in DSB repair.
- Successfully evaluated chemical inhibitors targeting the non-homologous end-joining pathway.
Conclusions:
- The CometChip offers a high-throughput, direct method for measuring DSBs and repair capacity.
- This platform can aid in developing targeted cancer therapies with potentially reduced side effects.
- CometChip technology supports advancements in cancer epidemiology, clinical evaluation, and drug development.
Related Concept Videos
DNA Microarrays
Fixing Double-strand Breaks

