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Updated: May 10, 2026

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
Antitumor impact of p14ARF on gefitinib-resistant non-small cell lung cancers
Ken Saito1, Nagio Takigawa, Naoko Ohtani
1Division of Oncological Pathology, Aichi Cancer Center Research Institute, Chikusa-ku, Japan.
Abstract:
Activation of the epidermal growth factor receptor (EGFR) has been observed in many malignant tumors and its constitutive signal transduction facilitates the proliferation of tumors. EGFR-tyrosine kinase inhibitors, such as gefitinib, are widely used as a molecular-targeting agent for the inactivation of EGFR signaling and show considerable therapeutic effect in non-small cell lung cancers harboring activating EGFR mutations. However, prolonged treatment inevitably produces tumors with additional gefitinib-resistant mutations in EGFR, which is a critical issue for current therapeutics. We aimed to characterize the distinct molecular response to gefitinib between the drug-resistant and drug-sensitive lung adenocarcinoma cells in order to learn about therapeutics based on the molecular information. From the quantitative PCR analysis, we found a specific increase in p14(ARF) expression in gefitinib-sensitive lung adenocarcinoma clones, which was absent in gefitinib-resistant clones. Moreover, mitochondria-targeted p14(ARF) triggered the most augmented apoptosis in both clones. We identified the amino acid residues spanning from 38 to 65 as a functional core of mitochondrial p14(ARF) (p14 38-65 a.a.), which reduced the mitochondrial membrane potential and caused caspase-9 activation. The synthesized peptide covering the p14 38-65 a.a. induced growth suppression of the gefitinib-resistant clones without affecting nonneoplastic cells. Notably, transduction of the minimized dose of the p14 38-65 peptide restored the response to gefitinib like that in the sensitive clones. These findings suggest that the region of p14(ARF) 38-65 a.a. is critical in the pharmacologic action of gefitinib against EGFR-mutated lung adenocarcinoma cells and has potential utility in the therapeutics of gefitinib-resistant cancers.
Insights
A specific region of p14-ARF (amino acids 38-65) promotes apoptosis and restores gefitinib sensitivity in lung adenocarcinoma cells. This finding offers potential for treating gefitinib-resistant cancers.
Area of Science:
- Oncology
- Molecular Biology
- Pharmacology
Background:
- Epidermal growth factor receptor (EGFR) activation drives tumor proliferation in many cancers.
- Gefitinib, an EGFR inhibitor, is effective for non-small cell lung cancer (NSCLC) with EGFR mutations.
- Acquired resistance to gefitinib due to new EGFR mutations is a major clinical challenge.
Purpose of the Study:
- To investigate differential molecular responses to gefitinib in drug-sensitive versus drug-resistant lung adenocarcinoma cells.
- To identify molecular targets for overcoming gefitinib resistance.
Main Methods:
- Quantitative PCR to analyze gene expression differences.
- Mitochondrial targeting of p14-ARF to induce apoptosis.
- Peptide synthesis and application of p14-ARF (38-65 a.a.) to cancer cells.
- Assessment of cell growth, mitochondrial membrane potential, and caspase activation.
Main Results:
- p14-ARF expression was significantly higher in gefitinib-sensitive cells compared to resistant cells.
- Mitochondria-targeted p14-ARF induced apoptosis in both cell types.
- The p14-ARF (38-65 a.a.) region was identified as crucial for mitochondrial function and apoptosis induction.
- A synthesized peptide of p14-ARF (38-65 a.a.) suppressed resistant cell growth and restored gefitinib sensitivity.
Conclusions:
- The p14-ARF (38-65 a.a.) region plays a critical role in gefitinib's efficacy against EGFR-mutated lung adenocarcinoma.
- This peptide region holds therapeutic potential for overcoming gefitinib resistance in lung cancer.
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