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Updated: Dec 21, 2025

A Rapid Screening Workflow to Identify Potential Combination Therapy for GBM using Patient-Derived Glioma Stem Cells
Published on: March 28, 2021
Osimertinib successfully combats EGFR-negative glioblastoma cells by inhibiting the MAPK pathway
Cheng Chen1,2, Chuan-Dong Cheng1,2,3,4, Hong Wu1,5
1High Magnetic Field Laboratory, Key Laboratory of High Magnetic Field and Ion Beam Physical Biology, Hefei Institutes of Physical Science, Chinese Academy of Sciences, Hefei, 230031, China.
Abstract:
Glioblastoma (GBM) patients have extremely poor prognoses, and currently no effective treatment available including surgery, radiation, and chemotherapy. MAPK-interacting kinases (MNK1/2) as the downstream of the MAPK-signaling pathway regulate protein synthesis in normal and tumor cells. Research has shown that targeting MNKs may be an effective strategy to treat GBM. In this study we investigated the antitumor activity of osimertinib, an FDA-approved epidermal growth factor receptor (EGFR) inhibitor, against patient-derived primary GBM cells. Using high-throughput screening approach, we screened the entire panel of FDA-approved drugs against primary cancer cells derived from glioblastoma patients, found that osimertinib (3 μM) suppressed the proliferation of a subset (10/22) of EGFR-negative GBM cells (>50% growth inhibition). We detected the gene expression difference between osimertinib-sensitive and -resistant cells, found that osimertinib-sensitive GBM cells displayed activated MAPK-signaling pathway. We further showed that osimertinib potently inhibited the MNK kinase activities with IC50 values of 324 nM and 48.6 nM, respectively, against MNK1 and MNK2 kinases; osimertinib (0.3-3 μM) dose-dependently suppressed the phosphorylation of eukaryotic translation initiation factor 4E (eIF4E). In GBM patient-derived xenografts mice, oral administration of osimertinib (40 mg· kg-1 ·d-1, for 18 days) significantly suppressed the tumor growth (TGI = 74.5%) and inhibited eIF4E phosphorylation in tumor cells. Given the fact that osimertinib could cross the blood-brain barrier and its toxicity was well tolerated in patients, our results suggest that osimertinib could be a new and effective drug candidate for the EGFR-negative GBM patients.
Insights
Osimertinib, an EGFR inhibitor, shows promise in treating EGFR-negative glioblastoma by inhibiting MAPK-interacting kinases (MNK1/2) and protein synthesis. This drug effectively suppressed tumor growth in mice, suggesting a new therapeutic avenue for glioblastoma patients.
Area of Science:
- Oncology
- Molecular Biology
- Drug Discovery
Background:
- Glioblastoma (GBM) presents a poor prognosis with limited treatment options.
- MAPK-interacting kinases (MNK1/2) are crucial for protein synthesis and are implicated in GBM.
- Targeting MNK1/2 represents a potential therapeutic strategy for GBM.
Purpose of the Study:
- To investigate the antitumor activity of osimertinib against patient-derived primary GBM cells.
- To explore osimertinib's efficacy in EGFR-negative GBM models.
- To assess osimertinib's impact on the MAPK signaling pathway and protein synthesis.
Main Methods:
- High-throughput screening of FDA-approved drugs against primary GBM cells.
- Gene expression analysis to differentiate sensitive and resistant GBM cells.
- In vitro kinase assays to determine osimertinib's inhibition of MNK1/2.
- In vivo studies using GBM patient-derived xenografts in mice.
Main Results:
- Osimertinib suppressed proliferation in a subset of EGFR-negative GBM cells (>50% growth inhibition).
- Sensitive GBM cells exhibited an activated MAPK signaling pathway.
- Osimertinib potently inhibited MNK1 (IC50=324nM) and MNK2 (IC50=48.6nM) and suppressed eIF4E phosphorylation.
- Oral osimertinib significantly reduced tumor growth (TGI=74.5%) in GBM xenografts and inhibited eIF4E phosphorylation.
Conclusions:
- Osimertinib demonstrates significant antitumor activity against EGFR-negative GBM cells.
- The drug effectively targets MNK kinases and downstream protein synthesis.
- Osimertinib's ability to cross the blood-brain barrier and its established safety profile suggest its potential as a novel therapeutic for EGFR-negative GBM.
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