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Updated: Dec 27, 2025

Live-Cell Imaging Assays to Study Glioblastoma Brain Tumor Stem Cell Migration and Invasion
Published on: August 29, 2018
Identifying conserved molecular targets required for cell migration of glioblastoma cancer stem cells
Josephine Volovetz1,2, Artem D Berezovsky1, Tyler Alban1,2
1Lerner Research Institute, Cleveland Clinic, Cleveland, OH, 44195, USA.
Abstract:
Glioblastoma (GBM) is the most prevalent primary malignant brain tumor and is associated with extensive tumor cell infiltration into the adjacent brain parenchyma. However, there are limited targeted therapies that address this disease hallmark. While the invasive capacity of self-renewing cancer stem cells (CSCs) and their non-CSC progeny has been investigated, the mode(s) of migration used by CSCs during invasion is currently unknown. Here we used time-lapse microscopy to evaluate the migratory behavior of CSCs, with a focus on identifying key regulators of migration. A head-to-head migration assay demonstrated that CSCs are more invasive than non-CSCs. Time-lapse live cell imaging further revealed that GBM patient-derived CSC models either migrate in a collective manner or in a single cell fashion. To uncover conserved molecular regulators responsible for collective cell invasion, we utilized the genetically tractable Drosophila border cell collective migration model. Candidates for functional studies were generated using results from a targeted Drosophila genetic screen followed by gene expression analysis of the human homologs in GBM tumors and associated GBM patient prognosis. This strategy identified the highly conserved small GTPase, Rap1a, as a potential regulator of cell invasion. Alteration of Rap1a activity impaired the forward progress of Drosophila border cells during development. Rap1a expression was elevated in GBM and associated with higher tumor grade. Functionally, the levels of activated Rap1a impacted CSC migration speed out of spheres onto extracellular matrix. The data presented here demonstrate that CSCs are more invasive than non-CSCs, are capable of both collective and single cell migration, and express conserved genes that are required for migration and invasion. Using this integrated approach, we identified a new role for Rap1a in the migration of GBM CSCs.
Insights
Glioblastoma cancer stem cells (CSCs) are highly invasive and use collective or single-cell migration. Researchers identified Rap1a as a key regulator of this invasion, offering new therapeutic targets for brain tumors.
Area of Science:
- Neuro-oncology
- Cell Biology
- Cancer Research
Background:
- Glioblastoma (GBM) is an aggressive brain tumor characterized by invasive cell infiltration.
- Targeted therapies for GBM invasion are limited.
- The migratory behavior of glioblastoma cancer stem cells (CSCs) is not well understood.
Purpose of the Study:
- To investigate the migratory behavior of GBM CSCs.
- To identify molecular regulators of CSC invasion.
- To explore potential therapeutic targets for GBM.
Main Methods:
- Time-lapse microscopy to observe CSC migration.
- Head-to-head migration assays comparing CSCs and non-CSCs.
- Utilized Drosophila border cell migration model for conserved regulator discovery.
- Gene expression analysis in GBM tumors and patient prognosis.
- Assessed Rap1a activity and its impact on CSC migration.
Main Results:
- CSCs exhibit greater invasiveness than non-CSCs.
- GBM CSCs migrate collectively or as single cells.
- The small GTPase Rap1a was identified as a conserved regulator of cell invasion.
- Elevated Rap1a expression correlates with higher GBM tumor grade.
- Rap1a activity levels influenced CSC migration speed.
Conclusions:
- GBM CSCs are invasive and employ diverse migration strategies.
- Rap1a plays a crucial role in GBM CSC migration and invasion.
- Rap1a represents a potential therapeutic target for glioblastoma.
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