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Updated: Jul 27, 2025

Establishing Dual Resistance to EGFR-TKI and MET-TKI in Lung Adenocarcinoma Cells In Vitro with a 2-step Dose-escalation Procedure
Published on: August 11, 2017
Characterizing Evolutionary Dynamics Reveals Strategies to Exhaust the Spectrum of Subclonal Resistance in
Nina Müller1, Carina Lorenz2,3, Jenny Ostendorp2,3
1Institute for Biological Physics, University of Cologne, Cologne, Germany.
Abstract:
The emergence of resistance to targeted therapies restrains their efficacy. The development of rationally guided drug combinations could overcome this currently insurmountable clinical challenge. However, our limited understanding of the trajectories that drive the outgrowth of resistant clones in cancer cell populations precludes design of drug combinations to forestall resistance. Here, we propose an iterative treatment strategy coupled with genomic profiling and genome-wide CRISPR activation screening to systematically extract and define preexisting resistant subpopulations in an EGFR-driven lung cancer cell line. Integrating these modalities identifies several resistance mechanisms, including activation of YAP/TAZ signaling by WWTR1 amplification, and estimates the associated cellular fitness for mathematical population modeling. These observations led to the development of a combination therapy that eradicated resistant clones in large cancer cell line populations by exhausting the spectrum of genomic resistance mechanisms. However, a small fraction of cancer cells was able to enter a reversible nonproliferative state of drug tolerance. This subpopulation exhibited mesenchymal properties, NRF2 target gene expression, and sensitivity to ferroptotic cell death. Exploiting this induced collateral sensitivity by GPX4 inhibition clears drug-tolerant populations and leads to tumor cell eradication. Overall, this experimental in vitro data and theoretical modeling demonstrate why targeted mono- and dual therapies will likely fail in sufficiently large cancer cell populations to limit long-term efficacy. Our approach is not tied to a particular driver mechanism and can be used to systematically assess and ideally exhaust the resistance landscape for different cancer types to rationally design combination therapies.
Significance:
Unraveling the trajectories of preexisting resistant and drug-tolerant persister cells facilitates the rational design of multidrug combination or sequential therapies, presenting an approach to explore for treating EGFR-mutant lung cancer.
Insights
Developing combination therapies can overcome drug resistance in cancer. This study identified resistance mechanisms and developed a treatment that eradicated resistant clones, while also clearing drug-tolerant cells for complete tumor eradication.
Area of Science:
- Cancer Biology
- Genomics
- Pharmacology
Background:
- Drug resistance limits the efficacy of targeted cancer therapies.
- Understanding resistance mechanisms is crucial for designing effective combination treatments.
- Limited knowledge of resistant clone evolution hinders the development of strategies to prevent resistance.
Purpose of the Study:
- To systematically identify and characterize preexisting resistant subpopulations in EGFR-driven lung cancer.
- To develop a rational drug combination strategy to overcome resistance and eradicate cancer cells.
- To investigate the mechanisms of drug tolerance and identify vulnerabilities in persister cell populations.
Main Methods:
- Iterative treatment strategy combined with genomic profiling.
- Genome-wide CRISPR activation screening to identify resistance mechanisms.
- Mathematical modeling of cancer cell population dynamics.
- In vitro drug sensitivity assays and cell population analysis.
Main Results:
- Identified YAP/TAZ signaling activation via WWTR1 amplification as a resistance mechanism.
- Developed a combination therapy that eradicated resistant clones by targeting multiple genomic resistance pathways.
- Discovered a drug-tolerant subpopulation with mesenchymal properties and sensitivity to ferroptosis.
- GPX4 inhibition cleared drug-tolerant persister cells, leading to complete tumor cell eradication.
Conclusions:
- Targeted monotherapies and dual therapies are likely to fail in large cancer populations due to resistance.
- The proposed approach systematically assesses and exhausts the resistance landscape for rational combination therapy design.
- This strategy can be adapted for various cancer types to overcome resistance and improve treatment efficacy.
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