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Updated: Jul 16, 2025

Co-culture of Glioblastoma Stem-like Cells on Patterned Neurons to Study Migration and Cellular Interactions
Published on: February 24, 2021
Diffuse midline glioma invasion and metastasis rely on cell-autonomous signaling
Marco Bruschi1, Lilia Midjek2, Yassine Ajlil1
1Inserm U981, Molecular Predictors and New Targets in Oncology, Team Genomics and Oncogenesis of Pediatric Brain Tumors, Gustave Roussy, Université Paris-Saclay, Villejuif, France.
Background:
Diffuse midline gliomas (DMG) are pediatric tumors with negligible 2-year survival after diagnosis characterized by their ability to infiltrate the central nervous system. In the hope of controlling the local growth and slowing the disease, all patients receive radiotherapy. However, distant progression occurs frequently in DMG patients. Current clues as to what causes tumor infiltration circle mainly around the tumor microenvironment, but there are currently no known determinants to predict the degree of invasiveness.
Methods:
In this study, we use patient-derived glioma stem cells (GSCs) to create patient-specific 3D avatars to model interindividual invasion and elucidate the cellular supporting mechanisms.
Results:
We show that GSC models in 3D mirror the invasive behavior of the parental tumors, thus proving the ability of DMG to infiltrate as an autonomous characteristic of tumor cells. Furthermore, we distinguished 2 modes of migration, mesenchymal and ameboid-like, and associated the ameboid-like modality with GSCs derived from the most invasive tumors. Using transcriptomics of both organoids and primary tumors, we further characterized the invasive ameboid-like tumors as oligodendrocyte progenitor-like, with highly contractile cytoskeleton and reduced adhesion ability driven by crucial over-expression of bone morphogenetic pathway 7 (BMP7). Finally, we deciphered MEK, ERK, and Rho/ROCK kinases activated downstream of the BMP7 stimulation as actionable targets controlling tumor cell motility.
Conclusions:
Our findings identify 2 new therapeutic avenues. First, patient-derived GSCs represent a predictive tool for patient stratification in order to adapt irradiation strategies. Second, autocrine and short-range BMP7-related signaling becomes a druggable target to prevent DMG spread and metastasis.
Insights
Diffuse midline gliomas (DMG) infiltrate the central nervous system. This study reveals DMG cells have autonomous invasive capabilities, identifying BMP7 signaling as a target to prevent tumor spread.
Area of Science:
- Oncology
- Neuroscience
- Cell Biology
Background:
- Diffuse midline gliomas (DMG) are aggressive pediatric brain tumors with poor prognosis.
- Current treatments like radiotherapy have limited efficacy due to tumor infiltration.
- Predicting the degree of invasiveness in DMG remains a challenge.
Purpose of the Study:
- To model and understand the invasive behavior of diffuse midline gliomas (DMG).
- To elucidate the cellular mechanisms driving DMG interindividual invasion.
- To identify potential therapeutic targets for controlling DMG spread.
Main Methods:
- Utilized patient-derived glioma stem cells (GSCs) to create 3D patient-specific avatars.
- Analyzed GSC invasion modes (mesenchymal and ameboid-like) in 3D models.
- Performed transcriptomic analysis of organoids and primary tumors.
Main Results:
- DMG exhibits autonomous invasive capabilities, mirrored in 3D GSC models.
- Ameboid-like migration, associated with highly invasive tumors, was identified.
- Overexpression of BMP7 was linked to ameboid migration, contractile cytoskeleton, and reduced adhesion.
- MEK, ERK, and Rho/ROCK kinases were identified as downstream targets of BMP7 signaling.
Conclusions:
- Patient-derived GSCs can serve as predictive tools for stratifying patients and adapting treatment.
- BMP7 signaling represents a druggable target to inhibit DMG dissemination and metastasis.
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