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Primary resistance to first-generation EGFR-TKIs induced by MDM2 amplification in NSCLC
Dantong Sun1, Yan Zhu2, Jingjuan Zhu1
1Precision Medicine Center of Oncology, The Affiliated Hospital of Qingdao University, 16 Jiangsu Road, Qingdao, 266000, Shandong, China.
Introduction:
Targeted therapy for NSCLC is rapidly evolving. EGFR-TKIs benefit NSCLC patients with sensitive EGFR mutations and significantly prolong survival. However, 20-30% of patients demonstrate primary resistance to EGFR-TKIs, which leads to the failure of EGFR-TKI treatment. The mechanisms of primary resistance to EGFR-TKIs require further study.
Methods:
Targeted sequencing was used for the detection of genomic alterations among patients in our center. Regular cell culture and transfection with plasmids were used to establish NSCLC cell lines over-expressing MDM2 and vector control. We used the MTT assays to calculate the inhibition rate after exposure to erlotinib. Available datasets were used to determine the role of MDM2 in the prognosis of NSCLC.
Results:
Four patients harboring concurrent sensitive EGFR mutations and MDM2 amplifications demonstrated insensitivity to EGFR-TKIs in our center. In vitro experiments suggested that MDM2 amplification induces primary resistance to erlotinib. Over-expressed MDM2 elevated the IC50 value of erlotinib in HCC2279 line and reduced the inhibition rate. In addition, MDM2 amplification predicted a poor prognosis in NSCLC patients and was associated with a short PFS in those treated with EGFR-TKIs. The ERBB2 pathway was identified as a potential pathway activated by MDM2 amplification could be the focus of further research.
Conclusion:
MDM2 amplification induces the primary resistance to EGFR-TKIs and predicts poor prognosis in NSCLC patients. MDM2 may serve as a novel biomarker and treatment target for NSCLC. Further studies are needed to confirm the mechanism by which amplified MDM2 leads to primary resistance to EGFR-TKIs.
Insights
MDM2 amplification causes primary resistance to EGFR-TKIs in non-small cell lung cancer (NSCLC) patients. This finding suggests MDM2 as a potential biomarker and therapeutic target for improving NSCLC treatment outcomes.
Area of Science:
- Oncology
- Genetics
- Molecular Biology
Background:
- Targeted therapy, including Epidermal Growth Factor Receptor Tyrosine Kinase Inhibitors (EGFR-TKIs), has advanced non-small cell lung cancer (NSCLC) treatment.
- A significant subset of NSCLC patients (20-30%) exhibits primary resistance to EGFR-TKIs, limiting treatment efficacy.
- The underlying mechanisms of primary resistance to EGFR-TKIs remain incompletely understood.
Observation:
- Four NSCLC patients with concurrent EGFR mutations and MDM2 amplifications showed primary resistance to EGFR-TKIs.
- In vitro studies demonstrated that MDM2 amplification confers resistance to erlotinib, a type of EGFR-TKI.
- Elevated MDM2 levels increased the IC50 value of erlotinib and reduced its inhibition rate in NSCLC cell lines.
Findings:
- MDM2 amplification is associated with primary resistance to EGFR-TKIs in NSCLC.
- MDM2 amplification serves as a predictor of poor prognosis and shorter progression-free survival (PFS) in NSCLC patients treated with EGFR-TKIs.
- The ERBB2 pathway is implicated as a potential mechanism activated by MDM2 amplification.
Implications:
- MDM2 amplification may represent a novel predictive biomarker for EGFR-TKI treatment response in NSCLC.
- Targeting MDM2 could offer a new therapeutic strategy for overcoming primary resistance to EGFR-TKIs in NSCLC.
- Further investigation into the precise mechanisms of MDM2-mediated resistance is warranted.
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