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Updated: Nov 5, 2025

Assessment of Global DNA Double-Strand End Resection using BrdU-DNA Labeling coupled with Cell Cycle Discrimination Imaging
Published on: April 28, 2021
Assessment of Global DNA Double-Strand End Resection using BrdU-DNA Labeling coupled with Cell Cycle Discrimination
Julia O'Sullivan1, Sofiane Y Mersaoui1, Guy Poirier2
1Oncology Division, Genome Stability Laboratory, CHU de Québec Research Center, HDQ Pavilion; Department of Molecular Biology, Medical Biochemistry, and Pathology, Laval University Cancer Research Center.
Abstract:
The study of the DNA damage response (DDR) is a complex and essential field, which has only become more important due to the use of DDR-targeting drugs for cancer treatment. These targets are poly(ADP-ribose) polymerases (PARPs), which initiate various forms of DNA repair. Inhibiting these enzymes using PARP inhibitors (PARPi) achieves synthetic lethality by conferring a therapeutic vulnerability in homologous recombination (HR)-deficient cells due to mutations in breast cancer type 1 (BRCA1), BRCA2, or partner and localizer of BRCA2 (PALB2). Cells treated with PARPi accumulate DNA double-strand breaks (DSBs). These breaks are processed by the DNA end resection machinery, leading to the formation of single-stranded (ss) DNA and subsequent DNA repair. In a BRCA1-deficient context, reinvigorating DNA resection through mutations in DNA resection inhibitors, such as 53BP1 and DYNLL1, causes PARPi resistance. Therefore, being able to monitor DNA resection in cellulo is critical for a clearer understanding of the DNA repair pathways and the development of new strategies to overcome PARPi resistance. Immunofluorescence (IF)-based techniques allow for monitoring of global DNA resection after DNA damage. This strategy requires long-pulse genomic DNA labeling with 5-bromo-2'-deoxyuridine (BrdU). Following DNA damage and DNA end resection, the resulting single-stranded DNA is specifically detected by an anti-BrdU antibody under native conditions. Moreover, DNA resection can also be studied using cell cycle markers to differentiate between various phases of the cell cycle. Cells in the S/G2 phase allow the study of end resection within HR, whereas G1 cells can be used to study non-homologous end joining (NHEJ). A detailed protocol for this IF method coupled to cell cycle discrimination is described in this paper.
Insights
Monitoring DNA resection is crucial for understanding cancer drug resistance. This study details an immunofluorescence method to track DNA resection, aiding in the development of new cancer therapies.
Area of Science:
- Molecular Biology
- Cancer Research
- Genetics
Background:
- DNA damage response (DDR) is vital for cancer treatment, particularly with poly(ADP-ribose) polymerase inhibitors (PARPi).
- PARPi exploit homologous recombination (HR) deficiencies (e.g., BRCA1, BRCA2 mutations) causing synthetic lethality.
- PARPi resistance can arise from mutations affecting DNA resection, highlighting the need to monitor this process.
Purpose of the Study:
- To develop and detail an immunofluorescence (IF)-based method for monitoring DNA end resection in cellulo.
- To enable the study of DNA repair pathways and strategies to overcome PARPi resistance.
- To allow for cell cycle discrimination during DNA resection analysis.
Main Methods:
- Utilized 5-bromo-2'-deoxyuridine (BrdU) labeling to track genomic DNA.
- Employed immunofluorescence (IF) with anti-BrdU antibodies under native conditions to detect single-stranded DNA post-resection.
- Integrated cell cycle markers to differentiate between S/G2 (HR) and G1 (non-homologous end joining) phases.
Main Results:
- The described IF method successfully monitors global DNA resection following DNA damage.
- The protocol allows for the study of DNA resection dynamics in specific cell cycle phases.
- This technique provides a means to investigate mechanisms of PARPi resistance related to DNA resection.
Conclusions:
- Accurate monitoring of DNA resection is critical for understanding DDR and developing effective cancer therapies.
- The presented IF protocol offers a valuable tool for studying DNA repair and overcoming PARPi resistance.
- Cell cycle-specific analysis of DNA resection enhances insights into distinct repair pathways.

