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Updated: May 26, 2026

Validated Immunochemical Assay for Comprehensive Determination of the Human Epidermal Growth Factor Receptor 2 Released from and Bound to Cells
Published on: May 9, 2025
Protein expression signatures for inhibition of epidermal growth factor receptor-mediated signaling
Matthew V Myers1, H Charles Manning, Robert J Coffey
1Jim Ayers Institute for Precancer Detection and Diagnosis, Vanderbilt University School of Medicine, Nashville, Tennessee 37232, USA.
Abstract:
Analysis of cellular signaling networks typically involves targeted measurements of phosphorylated protein intermediates. However, phosphoproteomic analyses usually require affinity enrichment of phosphopeptides and can be complicated by artifactual changes in phosphorylation caused by uncontrolled preanalytical variables, particularly in the analysis of tissue specimens. We asked whether changes in protein expression, which are more stable and easily analyzed, could reflect network stimulation and inhibition. We employed this approach to analyze stimulation and inhibition of the epidermal growth factor receptor (EGFR) by EGF and selective EGFR inhibitors. Shotgun analysis of proteomes from proliferating A431 cells, EGF-stimulated cells, and cells co-treated with the EGFR inhibitors cetuximab or gefitinib identified groups of differentially expressed proteins. Comparisons of these protein groups identified 13 proteins whose EGF-induced expression changes were reversed by both EGFR inhibitors. Targeted multiple reaction monitoring analysis verified differential expression of 12 of these proteins, which comprise a candidate EGFR inhibition signature. We then tested these 12 proteins by multiple reaction monitoring analysis in three other models: 1) a comparison of DiFi (EGFR inhibitor-sensitive) and HCT116 (EGFR-insensitive) cell lines, 2) in formalin-fixed, paraffin-embedded mouse xenograft DiFi and HCT116 tumors, and 3) in tissue biopsies from a patient with the gastric hyperproliferative disorder Ménétrier's disease who was treated with cetuximab. Of the proteins in the candidate signature, a core group, including c-Jun, Jagged-1, and Claudin 4, were decreased by EGFR inhibitors in all three models. Although the goal of these studies was not to validate a clinically useful EGFR inhibition signature, the results confirm the hypothesis that clinically used EGFR inhibitors generate characteristic protein expression changes. This work further outlines a prototypical approach to derive and test protein expression signatures for drug action on signaling networks.
Insights
Protein expression changes can indicate cellular signaling network activity, offering a stable alternative to phosphoproteomics. This study identified a 12-protein signature reflecting epidermal growth factor receptor (EGFR) inhibition across multiple models.
Area of Science:
- Proteomics
- Molecular Biology
- Cancer Research
Background:
- Phosphoproteomic analysis of cellular signaling networks is complex due to artifactual changes.
- Protein expression changes offer a more stable and accessible alternative for network analysis.
Purpose of the Study:
- To investigate if protein expression changes can reflect epidermal growth factor receptor (EGFR) network stimulation and inhibition.
- To develop and test a protein expression signature for EGFR inhibition.
Main Methods:
- Shotgun and targeted multiple reaction monitoring (MRM) proteomic analyses were employed.
- Differential protein expression was analyzed in cell lines, xenografts, and patient biopsies.
- EGFR stimulation and inhibition were studied using EGF and EGFR inhibitors (cetuximab, gefitinib).
Main Results:
- A candidate 12-protein EGFR inhibition signature was identified.
- This signature demonstrated consistent changes across various models, including cell lines, tumors, and patient samples.
- Core proteins like c-Jun, Jagged-1, and Claudin 4 were consistently decreased by EGFR inhibitors.
Conclusions:
- Protein expression signatures can reliably indicate drug action on signaling networks.
- This approach provides a viable alternative to phosphoproteomics for analyzing drug effects.
- The study outlines a method for deriving and validating protein expression signatures for targeted therapies.
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