Related Experiment Video
Updated: Aug 18, 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
Transcriptomic changes underlying EGFR inhibitor resistance in human and mouse models of basal-like breast cancer
Narmeen S Rashid1,2, David C Boyd1,3, Amy L Olex4
1Department of Pathology, Virginia Commonwealth University, Richmond, VA, 23220, USA.
Abstract:
The goals of this study were to identify transcriptomic changes that arise in basal-like breast cancer cells during the development of resistance to epidermal growth factor receptor inhibitors (EGFRi) and to identify drugs that are cytotoxic once EGFRi resistance occurs. Human patient-derived xenografts (PDXs) were grown in immunodeficient mice and treated with a set of EGFRi; the EGFRi erlotinib was selected for more expansive in vivo studies. Single-cell RNA sequencing was performed on mammary tumors from the basal-like PDX WHIM2 that was treated with vehicle or erlotinib for 9 weeks. The PDX was then subjected to long-term erlotinib treatment in vivo. Through serial passaging, an erlotinib-resistant subline of WHIM2 was generated. Bulk RNA-sequencing was performed on parental and erlotinib-resistant tumors. In vitro high-throughput drug screening with > 500 clinically used compounds was performed on parental and erlotinib-resistant cells. Previously published bulk gene expression microarray data from MMTV-Wnt1 tumors were contrasted with the WHIM2 PDX data. Erlotinib effectively inhibited WHIM2 tumor growth for approximately 4 weeks. Compared to untreated cells, single-cell RNA sequencing revealed that a greater proportion of erlotinib-treated cells were in the G1 phase of the cell cycle. Comparison of WHIM2 and MMTV-Wnt1 gene expression data revealed a set of 38 overlapping genes that were differentially expressed in the erlotinib-resistant WHIM2 and MMTV-Wnt1 tumors. Comparison of all three data types revealed five genes that were upregulated across all erlotinib-resistant samples: IL19, KLK7, LCN2, SAA1, and SAA2. Of these five genes, LCN2 was most abundantly expressed in triple-negative breast cancers, and its knockdown restored erlotinib sensitivity in vitro. Despite transcriptomic differences, parental and erlotinib-resistant WHIM2 displayed similar responses to the majority of drugs assessed for cytotoxicity in vitro. This study identified transcriptomic changes arising in erlotinib-resistant basal-like breast cancer. These data could be used to identify a biomarker or develop a gene signature predictive of patient response to EGFRi. Future studies should explore the predictive capacity of these gene signatures as well as how LCN2 contributes to the development of EGFRi resistance.
Insights
This study identified key gene expression changes in basal-like breast cancer cells that develop resistance to epidermal growth factor receptor inhibitors (EGFRi). LCN2 was found to be upregulated and crucial for resistance, offering potential biomarkers for EGFRi treatment.
Area of Science:
- Oncology
- Genomics
- Molecular Biology
Background:
- Basal-like breast cancer often exhibits resistance to epidermal growth factor receptor inhibitors (EGFRi).
- Understanding the transcriptomic shifts during EGFRi resistance is crucial for developing new therapeutic strategies.
Purpose of the Study:
- To identify transcriptomic alterations in basal-like breast cancer cells during the development of resistance to EGFR inhibitors.
- To discover drugs that are effective against EGFR inhibitor-resistant breast cancer cells.
Main Methods:
- Utilized patient-derived xenografts (PDXs) of basal-like breast cancer (WHIM2) in mice, treated with erlotinib (an EGFRi).
- Employed single-cell and bulk RNA sequencing to analyze transcriptomic changes in parental and erlotinib-resistant tumors.
- Conducted in vitro high-throughput drug screening on resistant and sensitive cell lines.
Main Results:
- Erlotinib initially inhibited WHIM2 tumor growth, but resistance developed through serial passaging.
- Single-cell RNA sequencing indicated cell cycle alterations (G1 phase enrichment) in treated cells.
- Five genes (IL19, KLK7, LCN2, SAA1, SAA2) were consistently upregulated in resistant samples; LCN2 knockdown restored erlotinib sensitivity.
- Despite transcriptomic changes, resistant cells showed similar in vitro drug responses to parental cells for most compounds.
Conclusions:
- Identified specific transcriptomic changes associated with erlotinib resistance in basal-like breast cancer.
- LCN2 is a potential biomarker and therapeutic target for overcoming EGFRi resistance.
- The findings provide a basis for developing predictive gene signatures for EGFRi response.
More Related Videos
Related Concept Videos
Treatment Resistant Cancers
Mouse Models of Cancer Study
The development of transgenic, knockout, and knock-in mice has led to an exponential increase in their use as model organisms in research,...

