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Updated: Jun 12, 2026

Profiling Sensitivity to Targeted Therapies in EGFR-Mutant NSCLC Patient-Derived Organoids
Published on: November 22, 2021
Dual actionability of BMI1 activation and mitotic vulnerability defines adaptive Osimertinib resistance in
Paolo Armanetti1, Eva Cabrera San Millan2, Maddalena Di Nardo2
1CNR-Consiglio Nazionale delle Ricerche, Istituto di Fisiologia Clinica (IFC-CNR), Area della Ricerca di Pisa, Pisa, Italy.
Abstract:
Non-small cell lung cancer (NSCLC) remains a leading cause of cancer mortality worldwide. Tumors carrying activating epidermal growth factor receptor (EGFR) mutations initially respond to tyrosine kinase inhibitors (TKIs), with Osimertinib representing the current standard of care. However, acquired resistance inevitably develops, involving both genetic and non-genetic mechanisms, the latter playing a major role in sustaining cellular plasticity and promoting tumor aggressiveness. Here, we show that Osimertinib-resistant H1975 cells acquire a more aggressive phenotype than their parental (Par) counterparts, characterized by enhanced migratory behavior and transcriptional enrichment of BMI1 target genes, as well as mitotic defects and concomitant alterations in expression of mitotic cell-cycle pathways. Despite unchanged proliferation, resistant cells display increased mitotic activity and frequent cytokinetic defects, revealing a dependency on mitotic machinery and microtubule integrity, an Achilles' heel created by adaptive resistance. Functionally, BMI1 overexpression in Par cells recapitulates both resistance and enhanced migration, highlighting its central role in driving the resistant phenotype. Exploiting these vulnerabilities, Unesbulin (PTC596), a tubulin-binding agent with BMI1 inhibitory activity, triggers mitotic catastrophe, mechanistically induces apoptosis in vitro and drives regression of resistant xenografts in vivo. Our findings establish BMI1 as a key mediator of Osimertinib resistance and aggressiveness, uncovering a mutation-context-dependent mitotic vulnerability that can be therapeutically exploited, providing a rationale for targeting BMI1 and mitotic abnormalities to overcome resistance in T790M/L858R backgrounds.
Insights
Osimertinib resistance in non-small cell lung cancer (NSCLC) leads to aggressive tumors. Targeting BMI1 and mitotic defects with Unesbulin shows promise in overcoming this resistance.
Area of Science:
- Oncology
- Molecular Biology
- Cancer Research
Background:
- Non-small cell lung cancer (NSCLC) is a major cause of cancer mortality globally.
- Epidermal growth factor receptor (EGFR) tyrosine kinase inhibitors (TKIs), like Osimertinib, are standard treatments but acquired resistance is common.
- Non-genetic mechanisms contribute significantly to acquired resistance, tumor plasticity, and aggressiveness.
Purpose of the Study:
- To investigate the mechanisms driving Osimertinib resistance in NSCLC.
- To identify vulnerabilities associated with acquired resistance.
- To explore therapeutic strategies targeting resistance mechanisms.
Main Methods:
- Comparative analysis of Osimertinib-resistant (H1975) and parental NSCLC cells.
- Assessment of cellular phenotypes, including migration and mitotic activity.
- Transcriptional profiling focusing on BMI1 target genes and cell-cycle pathways.
- In vitro and in vivo studies using Unesbulin (PTC596) in resistant models.
Main Results:
- Osimertinib-resistant cells exhibit increased migration and BMI1 target gene enrichment.
- Resistant cells show mitotic defects and cytokinetic abnormalities despite unchanged proliferation.
- BMI1 overexpression in parental cells mimics the resistant phenotype, including enhanced migration.
- Unesbulin induces mitotic catastrophe, apoptosis, and xenograft regression in resistant models.
Conclusions:
- BMI1 is a key mediator of Osimertinib resistance and NSCLC aggressiveness.
- Acquired resistance creates a vulnerability in mitotic machinery and microtubule integrity.
- Targeting BMI1 and mitotic abnormalities with agents like Unesbulin offers a potential strategy to overcome Osimertinib resistance in specific EGFR mutation backgrounds (T790M/L858R).
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