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Combination Therapy With MDM2 and MEK Inhibitors Is Effective in Patient-Derived Models of Lung Adenocarcinoma With
Arielle Elkrief1, Igor Odintsov2, Vladimir Markov3
1Human Oncology and Pathogenesis Program, Memorial Sloan Kettering Cancer Center, New York, New York; Department of Pathology, Memorial Sloan Kettering Cancer Center, New York, New York; Department of Medicine, Memorial Sloan Kettering Cancer Center, New York, New York.
Introduction:
Although targeted therapies have revolutionized the therapeutic landscape of lung adenocarcinomas (LUADs), disease progression on single-agent targeted therapy against known oncogenic drivers is common, and therapeutic options after disease progression are limited. In patients with MDM2 amplification (MDM2amp) and a concurrent oncogenic driver alteration, we hypothesized that targeting of the tumor-suppressor pathway (by means of restoration of p53 using MDM2 inhibition) and simultaneous targeting of co-occurring MAPK oncogenic pathway might represent a more durably effective therapeutic strategy.
Methods:
We evaluated genomic next-generation sequencing data using the Memorial Sloan Kettering Cancer Center-Integrated Mutation Profiling of Actionable Cancer Targets platform to nominate potential targets for combination therapy in LUAD. We investigated the small molecule MDM2 inhibitor milademetan in cell lines and patient-derived xenografts of LUAD with a known driver alteration and MDM2amp.
Results:
Of 10,587 patient samples from 7121 patients with LUAD profiled by next-generation sequencing, 6% (410 of 7121) harbored MDM2amp. MDM2amp was significantly enriched among tumors with driver alterations in METex14 (36%, p < 0.001), EGFR (8%, p < 0.001), RET (12%, p < 0.01), and ALK (10%, p < 0.01). The combination of milademetan and the MEK inhibitor trametinib was synergistic in growth inhibition of ECLC5-GLx (TRIM33-RET/MDM2amp), LUAD12c (METex14/KRASG12S/MDM2amp), SW1573 (KRASG12C, TP53 wild type), and A549 (KRASG12S) cells and in increasing expression of proapoptotic proteins PUMA and BIM. Treatment of ECLC5-GLx and LUAD12c with single-agent milademetan increased ERK phosphorylation, consistent with previous data on ERK activation with MDM2 inhibition. This ERK activation was effectively suppressed by concomitant administration of trametinib. In contrast, ERK phosphorylation induced by milademetan was not suppressed by concurrent RET inhibition using selpercatinib (in ECLC5-GLx) or MET inhibition using capmatinib (in LUAD12c). In vivo, combination milademetan and trametinib was more effective than either agent alone in ECLC5-GLx, LX-285 (EGFRex19del/MDM2amp), L13BS1 (METex14/MDM2amp), and A549 (KRASG12S, TP53 wild type).
Conclusions:
Combined MDM2/MEK inhibition was found to have efficacy across multiple patient-derived LUAD models harboring MDM2amp and concurrent oncogenic drivers. This combination, potentially applicable to LUADs with a wide variety of oncogenic driver mutations and kinase fusions activating the MAPK pathway, has evident clinical implications and will be investigated as part of a planned phase 1/2 clinical trial.
Insights
Targeting MDM2 amplification (MDM2amp) with milademetan and the MAPK pathway with trametinib shows promise for lung adenocarcinoma. This combination therapy demonstrated synergistic efficacy in preclinical models, offering new hope for patients with limited treatment options.
Area of Science:
- Oncology
- Molecular Biology
- Genomics
Background:
- Targeted therapies have improved lung adenocarcinoma (LUAD) treatment, but resistance and limited options post-progression remain challenges.
- MDM2 amplification (MDM2amp) occurs in 6% of LUAD patients and is often co-occurring with driver alterations.
- Restoring p53 function via MDM2 inhibition combined with MAPK pathway targeting is a potential strategy for durable efficacy.
Purpose of the Study:
- To investigate the efficacy of combining MDM2 inhibition (milademetan) with MEK inhibition (trametinib) in LUAD models with MDM2amp and driver alterations.
- To evaluate the therapeutic potential of dual MDM2/MAPK pathway inhibition in preclinical LUAD models.
Main Methods:
- Genomic profiling of 10,587 LUAD patient samples to identify MDM2amp and co-occurring driver alterations.
- Evaluation of the MDM2 inhibitor milademetan and MEK inhibitor trametinib in LUAD cell lines and patient-derived xenografts (PDXs).
- Assessment of synergistic effects on cell growth, apoptosis, and signaling pathway activation (ERK phosphorylation).
Main Results:
- MDM2amp was significantly enriched in LUADs with METex14, EGFR, RET, and ALK driver alterations.
- The combination of milademetan and trametinib showed synergistic growth inhibition and increased apoptosis in preclinical models.
- Combined MDM2/MEK inhibition suppressed ERK activation and demonstrated superior efficacy in vivo compared to single agents.
Conclusions:
- Combined MDM2 and MEK inhibition is effective in LUAD models with MDM2amp and concurrent oncogenic drivers.
- This combination strategy holds promise for LUADs with various driver mutations activating the MAPK pathway.
- A Phase 1/2 clinical trial is planned to investigate this combination therapy.
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