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Updated: Jul 18, 2025

Genetic Barcoding with Fluorescent Proteins for Multiplexed Applications
Published on: April 14, 2015
Expressed Barcoding Enables High-Resolution Tracking of the Evolution of Drug Tolerance
Jennifer L Cotton1, Javier Estrada Diez1, Vivek Sagar1
1Oncology Disease Area, Novartis Institutes for BioMedical Research, Cambridge, Massachusetts.
Abstract:
For a majority of patients with non-small cell lung cancer with EGFR mutations, treatment with EGFR inhibitors (EGFRi) induces a clinical response. Despite this initial reduction in tumor size, residual disease persists that leads to disease relapse. Elucidating the preexisting biological differences between sensitive cells and surviving drug-tolerant persister cells and deciphering how drug-tolerant cells evolve in response to treatment could help identify strategies to improve the efficacy of EGFRi. In this study, we tracked the origins and clonal evolution of drug-tolerant cells at a high resolution by using an expressed barcoding system coupled with single-cell RNA sequencing. This platform enabled longitudinal profiling of gene expression and drug sensitivity in response to EGFRi across a large number of clones. Drug-tolerant cells had higher expression of key survival pathways such as YAP and EMT at baseline and could also differentially adapt their gene expression following EGFRi treatment compared with sensitive cells. In addition, drug combinations targeting common downstream components (MAPK) or orthogonal factors (chemotherapy) showed greater efficacy than EGFRi alone, which is attributable to broader targeting of the heterogeneous EGFRi-tolerance mechanisms present in tumors. Overall, this approach facilitates thorough examination of clonal evolution in response to therapy that could inform the development of improved diagnostic approaches and treatment strategies for targeting drug-tolerant cells.
Significance:
The evolution and heterogeneity of EGFR inhibitor tolerance are identified in a large number of clones at enhanced cellular and temporal resolution using an expressed barcode technology coupled with single-cell RNA sequencing.
Insights
Drug-tolerant cells in non-small cell lung cancer (NSCLC) exhibit distinct survival pathways and adapt gene expression to resist epidermal growth factor receptor inhibitors (EGFRi). Combination therapies targeting these resistant cells improve treatment efficacy.
Area of Science:
- Oncology
- Molecular Biology
- Genomics
Background:
- Non-small cell lung cancer (NSCLC) with EGFR mutations often responds initially to EGFR inhibitors (EGFRi).
- Residual disease persists, leading to treatment relapse due to drug-tolerant persister cells.
- Understanding persister cell biology is crucial for improving EGFRi efficacy.
Purpose of the Study:
- To track the origins and clonal evolution of drug-tolerant persister cells in EGFR-mutated NSCLC.
- To decipher the molecular mechanisms underlying EGFR inhibitor (EGFRi) tolerance.
- To identify strategies for overcoming treatment resistance.
Main Methods:
- Utilized an expressed barcoding system for high-resolution tracking of clonal evolution.
- Employed single-cell RNA sequencing for longitudinal profiling of gene expression.
- Assessed drug sensitivity in response to EGFRi across numerous clones.
Main Results:
- Drug-tolerant cells showed higher baseline expression of YAP and EMT survival pathways.
- Persister cells differentially adapted gene expression upon EGFRi treatment compared to sensitive cells.
- Combination therapies (MAPK targeting, chemotherapy) demonstrated greater efficacy than EGFRi alone.
Conclusions:
- EGFRi-tolerant cells possess distinct biological features and adaptive capabilities.
- Targeting heterogeneous tolerance mechanisms through combination therapy is effective.
- This approach aids in developing improved diagnostics and treatments for drug-tolerant cells.
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