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Targeting Glioblastoma Cell State Plasticity for Enhanced Therapeutic Efficacy
Abstract:
Glioblastoma (GBM) is the most common and deadly primary brain cancer, with limited therapeutic options. Treatment failure has been associated with intratumoral heterogeneity and the acquisition of a pronounced mesenchymal-like (MES-L) phenotype after recurrence. Here, we have screened a panel of drugs with diverse mechanisms of action across two patient-derived glioblastoma stem cells (GSCs) to characterize the dynamics of drug-mediated transcriptomic cellular state changes. Our results demonstrate that anti-tumor drugs induce significant but reversible alterations in cellular state distribution at the single-cell level in a drug-specific manner, influencing transitions between mesenchymal and the neurodevelopmental astrocytic-like (AC-L) states. Utilizing barcoded analysis in our recently developed ex vivo glioblastoma cerebral organoid (GLICO) model, we discerned distinct cell state sensitivities to the MES-L enhancing histone deacetylase inhibitor, panobinostat, which are contingent on the inducible modulation of the mesenchymal transcription factor FOSL1. The strategic combination of MES-L enhancing and MES-l suppressing genetic perturbations or drugs significantly increases anti-glioma activity in a strategy we call state-selective lethality. Overall, our findings highlight the critical role of cell state plasticity in the response of GSCs to anti-tumor therapeutic stress and underscore the potential for novel GBM combination drug strategies.
Insights
Glioblastoma stem cells (GSCs) can change states, impacting treatment. Combining drugs that target these state changes offers a new strategy to fight brain cancer.
Area of Science:
- Neuro-oncology
- Cancer biology
- Genomics
Background:
- Glioblastoma (GBM) is a deadly brain cancer with poor treatment outcomes.
- Intratumoral heterogeneity and mesenchymal-like (MES-L) phenotypes contribute to treatment failure.
Purpose of the Study:
- To characterize drug-mediated transcriptomic changes in glioblastoma stem cells (GSCs).
- To investigate the role of cell state plasticity in therapeutic response.
- To explore novel combination drug strategies for GBM.
Main Methods:
- Screening of diverse drugs on patient-derived GSCs.
- Single-cell transcriptomic analysis to assess cellular state dynamics.
- Utilizing barcoded analysis in an ex vivo glioblastoma cerebral organoid (GLICO) model.
Main Results:
- Anti-tumor drugs induce reversible, drug-specific changes in GSC states (mesenchymal-like and astrocytic-like).
- Histone deacetylase inhibitor panobinostat's efficacy depends on FOSL1 modulation.
- Combining MES-L enhancing and suppressing agents increases anti-glioma activity ('state-selective lethality').
Conclusions:
- Cell state plasticity is crucial for GSC response to anti-cancer drugs.
- Targeting cell state transitions offers a promising therapeutic avenue for GBM.
- Novel combination drug strategies can overcome treatment resistance in glioblastoma.
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