Related Experiment Video
Updated: Sep 28, 2025

Assessment of Global DNA Double-Strand End Resection using BrdU-DNA Labeling coupled with Cell Cycle Discrimination Imaging
Published on: April 28, 2021
Small-molecule targeted therapies induce dependence on DNA double-strand break repair in residual tumor cells
Moiez Ali1, Min Lu1, Hazel Xiaohui Ang1
1Department of Pharmacology and Cancer Biology and Duke Cancer Institute, Duke University, Durham, NC 27710, USA.
Abstract:
Residual cancer cells that survive drug treatments with targeted therapies act as a reservoir from which eventual resistant disease emerges. Although there is great interest in therapeutically targeting residual cells, efforts are hampered by our limited knowledge of the vulnerabilities existing in this cell state. Here, we report that diverse oncogene-targeted therapies, including inhibitors of epidermal growth factor receptor (EGFR), anaplastic lymphoma kinase (ALK), KRAS, and BRAF, induce DNA double-strand breaks and, consequently, ataxia-telangiectasia mutated (ATM)-dependent DNA repair in oncogene-matched residual tumor cells. This DNA damage response, observed in cell lines, mouse xenograft models, and human patients, is driven by a pathway involving the activation of caspases 3 and 7 and the downstream caspase-activated deoxyribonuclease (CAD). CAD is, in turn, activated through caspase-mediated degradation of its endogenous inhibitor, ICAD. In models of EGFR mutant non-small cell lung cancer (NSCLC), tumor cells that survive treatment with small-molecule EGFR-targeted therapies are thus synthetically dependent on ATM, and combined treatment with an ATM kinase inhibitor eradicates these cells in vivo. This led to more penetrant and durable responses in EGFR mutant NSCLC mouse xenograft models, including those derived from both established cell lines and patient tumors. Last, we found that rare patients with EGFR mutant NSCLC harboring co-occurring, loss-of-function mutations in ATM exhibit extended progression-free survival on first generation EGFR inhibitor therapy relative to patients with EGFR mutant NSCLC lacking deleterious ATM mutations. Together, these findings establish a rationale for the mechanism-based integration of ATM inhibitors alongside existing targeted therapies.
Insights
Targeted cancer therapies can induce DNA damage in residual tumor cells, creating a vulnerability. Combining ATM inhibitors with targeted therapies eradicates these cells, improving treatment response in EGFR-mutant NSCLC.
Area of Science:
- Oncology
- Molecular Biology
- Cancer Genetics
Background:
- Residual cancer cells surviving targeted therapies are a source of drug resistance.
- Understanding vulnerabilities in these residual cells is crucial for effective treatment.
Purpose of the Study:
- To identify vulnerabilities in residual cancer cells after oncogene-targeted therapy.
- To explore the potential of targeting DNA damage response pathways in resistant cancers.
Main Methods:
- Investigated DNA double-strand breaks and ATM-dependent DNA repair in residual cells across various models (cell lines, xenografts, patients).
- Analyzed the caspase-activated deoxyribonuclease (CAD) pathway activation.
- Tested combination therapy of EGFR inhibitors and ATM kinase inhibitors in EGFR-mutant NSCLC models.
Main Results:
- Diverse oncogene-targeted therapies induce DNA double-strand breaks and ATM-dependent repair in residual tumor cells.
- EGFR-mutant NSCLC residual cells exhibit synthetic dependence on ATM.
- Combination therapy with ATM kinase inhibitors eradicated residual cells and improved responses in vivo.
- Patients with EGFR-mutant NSCLC and ATM mutations showed longer progression-free survival on EGFR inhibitors.
Conclusions:
- Targeted therapies induce a DNA damage response pathway in residual cancer cells.
- ATM is a critical vulnerability in residual EGFR-mutant NSCLC cells.
- Integrating ATM inhibitors with targeted therapies offers a promising strategy for durable cancer responses.
More Related Videos
08:31Characterizing DNA Repair Processes at Transient and Long-lasting Double-strand DNA Breaks by Immunofluorescence Microscopy
Published on: June 8, 2018
06:59Using Next Generation Sequencing to Identify Mutations Associated with Repair of a CAS9-induced Double Strand Break Near the CD4 Promoter
Published on: March 31, 2022
Related Concept Videos
Targeted Cancer Therapies
There are several types of targeted therapies against...
Treatment Resistant Cancers
Fixing Double-strand Breaks
Overview of DNA Repair
Chemically...
DNA Damage can Stall the Cell Cycle
Long-patch Base Excision Repair