Related Experiment Video
Updated: Jun 29, 2026

Visualization and Quantitative Analysis of Genotoxin-Induced PARP1/PARP2 Activation in Cells Using a Fluorescent Fusion Protein-Based Reporter
Published on: April 17, 2026
A high-throughput RNA interference screen for DNA repair determinants of PARP inhibitor sensitivity
Christopher J Lord1, Sarah McDonald, Sally Swift
1The Breakthrough Breast Cancer Research Centre, The Institute of Cancer Research, Fulham Road, London SW3 6JB, UK.
Abstract:
Synthetic lethality is an attractive strategy for the design of novel therapies for cancer. Using this approach we have previously demonstrated that inhibition of the DNA repair protein, PARP1, is synthetically lethal with deficiency of either of the breast cancer susceptibility proteins, BRCA1 and BRCA2. This observation is most likely explained by the inability of BRCA deficient cells to repair DNA damage by homologous recombination (HR) and has led to the clinical trials of potent PARP inhibitors for the treatment of BRCA mutation-associated cancer. To identify further determinants of PARP inhibitor response, we took a high-throughput genetic approach. We tested each of the genes recognised as having a role in DNA repair using short-interfering RNA (siRNA) and assessed the sensitivity of siRNA transfected cells to a potent PARP inhibitor, KU0058948. The validity of this approach was confirmed by the identification of known genetic determinants of PARP inhibitor sensitivity, including genes involved in HR. Novel determinants of PARP inhibitor response were also identified, including the transcription coupled DNA repair (TCR) proteins DDB1 and XAB2. These results suggest that DNA repair pathways other than HR may determine sensitivity to PARP inhibitors and highlight the likelihood that ostensibly distinct DNA repair pathways cooperate to maintain genomic stability and cellular viability. Furthermore, the identification of these novel determinants may eventually guide the optimal use of PARP inhibitors in the clinic.
Insights
Synthetic lethality, a cancer therapy strategy, involves targeting DNA repair. Inhibiting PARP1 is lethal to cells lacking BRCA1/BRCA2, leading to PARP inhibitor trials for BRCA-mutated cancers.
Area of Science:
- Molecular Biology
- Genetics
- Cancer Therapeutics
Background:
- Synthetic lethality is a promising strategy for cancer therapy design.
- PARP1 inhibition is synthetically lethal with BRCA1/BRCA2 deficiency, driving clinical trials of PARP inhibitors for BRCA-mutated cancers.
- The inability of BRCA-deficient cells to repair DNA via homologous recombination (HR) explains this synthetic lethality.
Purpose of the Study:
- To identify novel genetic determinants of response to PARP inhibitors.
- To explore DNA repair pathways beyond HR that influence PARP inhibitor sensitivity.
Main Methods:
- A high-throughput genetic screen was employed using short-interfering RNA (siRNA).
- Genes involved in DNA repair were individually targeted with siRNA.
- Sensitivity of siRNA-transfected cells to the PARP inhibitor KU0058948 was assessed.
Main Results:
- Known determinants of PARP inhibitor sensitivity, including HR genes, were re-identified, validating the approach.
- Novel determinants of PARP inhibitor response were discovered, including transcription-coupled DNA repair (TCR) proteins DDB1 and XAB2.
- These findings suggest that DNA repair pathways beyond HR contribute to PARP inhibitor sensitivity.
Conclusions:
- Multiple DNA repair pathways cooperate to maintain genomic stability and cell viability.
- The identified novel determinants may guide the optimal clinical application of PARP inhibitors.
- This study expands the understanding of synthetic lethality and PARP inhibitor response.
More Related Videos
Related Concept Videos
DNA Damage can Stall the Cell Cycle
DNA Damage Can Stall the Cell Cycle
Long-patch Base Excision Repair

