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Updated: Jan 28, 2026

Profiling Sensitivity to Targeted Therapies in EGFR-Mutant NSCLC Patient-Derived Organoids
Published on: November 22, 2021
Urea Cycle Sustains Cellular Energetics upon EGFR Inhibition in EGFR-Mutant NSCLC
Catherine Pham-Danis1, Sarah Gehrke1, Etienne Danis2
1Department of Biochemistry and Molecular Genetics, University of Colorado Anschutz Medical Campus, Aurora, Colorado.
Abstract:
Mutations in oncogenes and tumor suppressor genes engender unique metabolic phenotypes crucial to the survival of tumor cells. EGFR signaling has been linked to the rewiring of tumor metabolism in non-small cell lung cancer (NSCLC). We have integrated the use of a functional genomics screen and metabolomics to identify metabolic vulnerabilities induced by EGFR inhibition. These studies reveal that following EGFR inhibition, EGFR-driven NSCLC cells become dependent on the urea cycle and, in particular, the urea cycle enzyme CPS1. Combining knockdown of CPS1 with EGFR inhibition further reduces cell proliferation and impedes cell-cycle progression. Profiling of the metabolome demonstrates that suppression of CPS1 potentiates the effects of EGFR inhibition on central carbon metabolism, pyrimidine biosynthesis, and arginine metabolism, coinciding with reduced glycolysis and mitochondrial respiration. We show that EGFR inhibition and CPS1 knockdown lead to a decrease in arginine levels and pyrimidine derivatives, and the addition of exogenous pyrimidines partially rescues the impairment in cell growth. Finally, we show that high expression of CPS1 in lung adenocarcinomas correlated with worse patient prognosis in publicly available databases. These data collectively reveal that NSCLC cells have a greater dependency on the urea cycle to sustain central carbon metabolism, pyrimidine biosynthesis, and arginine metabolism to meet cellular energetics upon inhibition of EGFR. IMPLICATIONS: Our results reveal that the urea cycle may be a novel metabolic vulnerability in the context of EGFR inhibition, providing an opportunity to develop rational combination therapies with EGFR inhibitors for the treatment of EGFR-driven NSCLC.
Insights
EGFR inhibition in non-small cell lung cancer (NSCLC) creates a dependency on the urea cycle, particularly CPS1. Targeting CPS1 alongside EGFR inhibitors offers a potential new therapy for NSCLC.
Area of Science:
- Oncology
- Metabolic pathways
- Cancer cell metabolism
Background:
- Epidermal growth factor receptor (EGFR) signaling drives non-small cell lung cancer (NSCLC) metabolism.
- Tumor cells exhibit unique metabolic phenotypes essential for survival.
Purpose of the Study:
- To identify metabolic vulnerabilities induced by EGFR inhibition in NSCLC.
- To investigate the role of the urea cycle in EGFR-driven NSCLC.
Main Methods:
- Functional genomics screening
- Metabolomics profiling
- Gene knockdown (CPS1)
- Analysis of patient data
Main Results:
- EGFR inhibition leads to NSCLC cell dependency on the urea cycle enzyme CPS1.
- CPS1 knockdown potentiates EGFR inhibition effects on central carbon, pyrimidine, and arginine metabolism.
- Reduced glycolysis and mitochondrial respiration observed upon combined inhibition.
- High CPS1 expression correlates with poor prognosis in lung adenocarcinoma.
Conclusions:
- The urea cycle is a critical metabolic vulnerability in EGFR-driven NSCLC upon EGFR inhibition.
- Targeting CPS1 in combination with EGFR inhibitors presents a novel therapeutic strategy for NSCLC.
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