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Autophagy modulates glioblastoma cell sensitivity to Selinexor-mediated XPO1 inhibition
Yongjian Tang1,2,3, Lisa Sprinzen1, Yukinori Terada1
1Department of Neurological Surgery and the UCSF Brain Tumor Center, The University of California-San Francisco, San Francisco, California, USA.
Background:
Selinexor is a selective inhibitor of exportin-1 (XPO1), a key mediator of the nucleocytoplasmic transport for molecules critical to tumor cell survival. Selinexor's lethality is generally associated with the induction of apoptosis, and in some cases, with autophagy-induced apoptosis. We performed this study to determine Selinexor's action in glioblastoma (GBM) cells, which are notoriously resistant to apoptosis.
Methods:
Patient-derived GBM cells were treated with Selinexor, and drug response and autophagy levels were monitored. Homozygous C528S XPO1 mutant GBM43 cells were generated by CRISPR/Cas9 editing. Single Selinexor or combination treatment with autophagy inhibitors was evaluated. In addition, bulk-tissue, single-cell, and spatial transcriptome were analyzed, and molecular docking was performed.
Results:
Although all cell lines exhibited a dose- and time-dependent reduction of cell viability, the most profound molecular response to Selinexor was induction of autophagy instead of apoptosis. Selinexor-induced autophagy was an on-target consequence of XPO1 inhibition, and could be mitigated by expression of a mutant, Selinexor-resistant form of XPO1, and Selinexor-induced autophagy was related at least in part to nuclear trapping of the transcription factor TFEB. Furthermore, genetic or pharmacologic suppression of autophagy sensitized the cells to Selinexor-induced toxicity in association with the induction of apoptosis. Finally, in intracranial PDX studies, the combination of Selinexor with the autophagy inhibitor chloroquine significantly impeded tumor growth and extended mouse survival relative to single-agent treatment.
Conclusion:
These results suggest that activation of autophagy confers a protective mechanism against Selinexor in GBM cells, and that the combination of Selinexor with autophagy inhibitors may serve as a viable means to enhance Selinexor-induced cell death.
Insights
Selinexor treatment in glioblastoma cells induced protective autophagy, not apoptosis. Combining Selinexor with autophagy inhibitors enhanced cell death and improved survival in preclinical models.
Area of Science:
- Oncology
- Molecular Biology
- Cancer Therapeutics
Background:
- Selinexor, an exportin-1 (XPO1) inhibitor, typically induces apoptosis in cancer cells.
- Glioblastoma (GBM) cells exhibit resistance to apoptosis, posing a therapeutic challenge.
- Understanding Selinexor's mechanism in GBM is crucial for developing effective treatments.
Purpose of the Study:
- To investigate the molecular mechanisms of Selinexor in patient-derived glioblastoma cells.
- To determine if Selinexor induces apoptosis or other cell death pathways in GBM.
- To evaluate the therapeutic potential of combining Selinexor with autophagy inhibitors.
Main Methods:
- Treatment of patient-derived GBM cells with Selinexor.
- Monitoring drug response and autophagy levels.
- Generation of XPO1 mutant GBM cells using CRISPR/Cas9.
- Evaluation of Selinexor monotherapy versus combination therapy with autophagy inhibitors.
- Transcriptomic analysis (bulk, single-cell, spatial) and molecular docking.
Main Results:
- Selinexor treatment induced autophagy, not apoptosis, in GBM cells in a dose- and time-dependent manner.
- Autophagy induction was an on-target effect of XPO1 inhibition, linked to TFEB nuclear trapping.
- Inhibition of autophagy sensitized GBM cells to Selinexor, promoting apoptosis and improving outcomes in preclinical models.
- Combination therapy with Selinexor and chloroquine significantly reduced tumor growth and extended survival in intracranial PDX studies.
Conclusions:
- Autophagy activation acts as a protective mechanism against Selinexor in glioblastoma.
- Combining Selinexor with autophagy inhibitors enhances Selinexor-induced cell death in GBM.
- This combination strategy shows promise for improving Selinexor efficacy in glioblastoma treatment.
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