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Updated: Aug 20, 2025

Author Spotlight: Developing Novel Anticancer Therapeutics Targeting the DNA Damage Response
Published on: June 14, 2024
A rapid multiplex cell-free assay on biochip to evaluate functional aspects of double-strand break repair
Xavier Tatin1,2, Giovanna Muggiolu3, Sarah Libert1
1LXRepair, 5 Avenue du Grand Sablon, 38700, La Tronche, France.
Abstract:
The repair of DNA double-strand breaks (DSBs) involves interdependent molecular pathways, of which the choice is crucial for a cell's fate when facing a damage. Growing evidence points toward the fact that DSB repair capacities correlate with disease aggressiveness, treatment response and treatment-related toxicities in cancer. Scientific and medical communities need more easy-to-use and efficient tools to rapidly estimate DSB repair capacities from a tissue, enable routine-accessible treatment personalization, and hopefully, improve survival. Here, we propose a new functional biochip assay (NEXT-SPOT) that characterizes DSB repair-engaged cellular pathways and provides qualitative and quantitative information on the contribution of several pathways in less than 2 h, from 10 mg of cell lysates. We introduce the NEXT-SPOT technology, detail the molecular characterizations of different repair steps occurring on the biochip, and show examples of DSB repair profiling using three cancer cell lines treated or not with a DSB-inducer (doxorubicin) and/or a DNA repair inhibitor (RAD51 inhibitor; DNA-PK inhibitor; PARP inhibitor). Among others, we demonstrate that NEXT-SPOT can accurately detect decreased activities in strand invasion and end-joining mechanisms following DNA-PK or RAD51 inhibition in DNA-PK-proficient cell lines. This approach offers an all-in-one reliable strategy to consider DSB repair capacities as predictive biomarkers easily translatable to the clinic.
Insights
A new biochip assay, NEXT-SPOT, rapidly assesses DNA double-strand break (DSB) repair capacities in cancer cells. This tool aids in personalizing cancer treatment by identifying predictive biomarkers for improved patient survival.
Area of Science:
- Molecular Biology
- Cancer Research
- Biotechnology
Background:
- DNA double-strand breaks (DSBs) are critical DNA lesions.
- DSB repair pathway choice impacts cell fate and cancer progression.
- Current methods for assessing DSB repair are limited in speed and accessibility.
Purpose of the Study:
- To develop a novel, rapid, and user-friendly assay for characterizing DSB repair pathways.
- To provide a tool for estimating DSB repair capacities in cancer tissues.
- To enable personalized cancer treatment strategies based on predictive biomarkers.
Main Methods:
- Development of the NEXT-SPOT functional biochip assay.
- Analysis of DSB repair-engaged cellular pathways using cell lysates.
- Profiling of DSB repair in cancer cell lines treated with DSB inducers and inhibitors.
Main Results:
- The NEXT-SPOT assay provides qualitative and quantitative information on multiple DSB repair pathways within 2 hours.
- It accurately detects decreased activities in strand invasion and end-joining mechanisms.
- The assay successfully identifies effects of DNA repair inhibitors like DNA-PK and RAD51 inhibitors.
Conclusions:
- NEXT-SPOT is an efficient and reliable tool for assessing DSB repair capacities.
- This technology can be translated to the clinic for routine use.
- DSB repair capacities can serve as valuable predictive biomarkers for cancer treatment and patient outcomes.

