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Updated: Aug 20, 2026

Live Imaging of Microtubule Dynamics in Glioblastoma Cells Invading the Zebrafish Brain
Published on: July 29, 2022
SRC regulates actin dynamics and invasion of malignant glial cells in three dimensions
Alexandre Angers-Loustau1, Ramm Hering, Tamra E Werbowetski
1Brain Tumor Research Center, Montreal Neurological Institute and Hospital, Department of Neurology and Neurosurgery, McGill University, 3801 University Room BT-205, Montreal, Quebec, Canada H3A 2B4.
Abstract:
Malignant glioma is the major brain tumor in adults and has a poor prognosis. The failure to control invasive cell subpopulations may be the key reason for local glioma recurrence after radical tumor resection and may contribute substantially to the failure of the other treatment modalities such as radiation therapy and chemotherapy. As a model for this invasion, we have implanted spheroids from a human glioma cell line (U251) in three-dimensional collagen type I matrices, which these cells readily invade. We first observed that the Src family kinase-specific pharmacologic inhibitors PP2 and SU6656 significantly inhibited the invasion of the cells in this assay. We confirmed this result by showing that expression of two inhibitors of Src family function, dominant-negative-Src and CSK, also suppressed glioma cell invasion. To characterize this effect at the level of the cytoskeleton, we used fluorescent time-lapse microscopy on U251 cells stably expressing a YFP-actin construct and observed a rapid change in actin dynamics following addition of PP2 in both two-dimensional and three-dimensional cultures. In monolayer cultures, PP2 caused the disappearance of peripheral membrane ruffles within minutes. In three-dimensional cultures, PP2 induced the loss of actin bursting at the leading tip of the invadopodium. The inhibition of Src family activity is thus a potential therapeutic approach to treat highly invasive malignant glioma.
Insights
Targeting Src family kinases can inhibit malignant glioma cell invasion. This finding offers a potential new therapeutic strategy for treating aggressive brain tumors and improving patient outcomes.
Area of Science:
- Neuro-oncology
- Cellular Biology
- Biochemistry
Background:
- Malignant glioma, a primary adult brain tumor, has a poor prognosis.
- Invasive glioma cell subpopulations contribute to tumor recurrence and treatment resistance.
- Understanding glioma cell invasion mechanisms is crucial for developing effective therapies.
Purpose of the Study:
- To investigate the role of Src family kinases in human glioma cell invasion.
- To evaluate the therapeutic potential of inhibiting Src family kinases in malignant glioma.
Main Methods:
- Utilized a 3D collagen type I matrix model with U251 human glioma spheroids.
- Administered Src family kinase-specific inhibitors (PP2, SU6656) and dominant-negative Src/CSK.
- Employed fluorescent time-lapse microscopy with YFP-actin to analyze cytoskeletal dynamics.
Main Results:
- Pharmacologic inhibition of Src family kinases (PP2, SU6656) significantly suppressed glioma cell invasion.
- Genetic inhibition (dominant-negative Src, CSK) also reduced glioma cell invasion.
- PP2 altered actin dynamics, causing loss of membrane ruffles in 2D and reduced actin bursting in 3D invadopodia.
Conclusions:
- Src family kinase activity is essential for malignant glioma cell invasion.
- Inhibiting Src family kinases represents a promising therapeutic strategy for invasive malignant glioma.
- Targeting cytoskeletal dynamics via Src inhibition may be key to controlling glioma progression.
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