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bioRxiv · 10.1101/2024.02.02.578510

Gene Regulatory Network topology governs resistance and treatment escape in glioma stem-like cells

Abstract

Poor prognosis and drug resistance in glioblastoma (GBM) manifests from heterogeneity and treatment-induced shifts in phenotypic states of tumor cells, including dedifferentiation to glioma stem-like cells (GSCs). This rare tumorigenic cell subpopulation is inherently resistant to temozolomide, undergoes proneural-to-mesenchymal transition (PMT) to evade therapy, and thereby drives recurrence. Through inference of transcriptional regulatory networks (TRNs) of patient-derived GSCs (PD-GSCs) at single-cell resolution, we demonstrate how topology of transcription factor interactions drives distinct trajectories of cell state transitions of susceptible and resistant PD-GSCs in response to cytotoxic drug treatment. By experimentally testing TRN simulation-based predictions, we show that drug treatment drives surviving cells of a PD-GSC along a trajectory of intermediate states, akin to a bottleneck in gene expression space, exposing vulnerability to potentiated killing by sequential addition of siRNA or a second drug targeting transcriptional programs governing non-genetic plasticity of a PD-GSC. Thus, our findings demonstrate an approach to uncover and use TRN topology of a PD-GSC to rationally predict combinatorial and sequential treatments that block treatment escape and acquired resistance in GBM.

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BibTeXRIS

Park, J. H., Hothi, P., Lopez Garcia de Lomana, A., Pan, M., Calder, R., Turkarslan, S., Wu, W.-J., Lee, H., Patel, A. P., Cobbs, C., Huang, S., Baliga, N. S.. 2024-02-07. Gene Regulatory Network topology governs resistance and treatment escape in glioma stem-like cells. https://doi.org/10.1101/2024.02.02.578510

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