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Updated: Aug 12, 2026

Co-culture of Glioblastoma Stem-like Cells on Patterned Neurons to Study Migration and Cellular Interactions
Published on: February 24, 2021
Microregional extracellular matrix heterogeneity in brain modulates glioma cell invasion
Anita C Bellail1, Stephen B Hunter, Daniel J Brat
1Laboratory of Molecular Neuro-Oncology, Department of Neurosurgery, Hematology/Oncology, Winship Cancer Institute and Brain Tumor Program, Emory University, Atlanta, GA 30322, USA.
Abstract:
The invasion of neoplastic cells into healthy brain tissue is a pathologic hallmark of gliomas and contributes to the failure of current therapeutic modalities (surgery, radiation and chemotherapy). Transformed glial cells share the common attributes of the invasion process, including cell adhesion to extracellular matrix (ECM) components, cell locomotion, and the ability to remodel extracellular space. However, glioma cells have the ability to invade as single cells through the unique environment of the normal central nervous system (CNS). The brain parenchyma has a unique composition, mainly hyaluronan and is devoid of rigid protein barriers composed of collagen, fibronectin and laminin. The integrins and the hyaluronan receptor CD44 are specific adhesion receptors active in glioma-ECM adhesion. These adhesion molecules play a major role in glioma cell-matrix interactions because the neoplastic cells use these receptors to adhere to and migrate along the components of the brain ECM. They also interact with the proteases secreted during glioma progression that degrade ECM allowing tumor cells to spread and diffusely infiltrate the brain parenchyma. The plasminogen activators (PAs), matrix metalloproteinases (MMPs) and lysosomal cysteine peptidases called cathepsins are also induced during the invasive process. Understanding the mechanisms of tumor cell invasion is critical as it plays a central role in glioma progression and failure of current treatment due to tumor recurrence from micro-disseminated disease. This review will focus on the impact of microregional heterogeneity of the ECM on glioma invasion in the normal adult brain and its modifications in tumoral brain.
Insights
Glioma invasion into the brain involves cell adhesion and matrix remodeling. Understanding these mechanisms, particularly extracellular matrix (ECM) interactions, is key to overcoming treatment failures.
Area of Science:
- Neuro-oncology
- Cellular biology
- Biochemistry
Background:
- Glioma cell invasion into brain tissue is a key factor in treatment failure.
- Glioma cells exhibit unique invasion mechanisms within the central nervous system (CNS) environment.
- The brain's extracellular matrix (ECM) composition influences glioma cell adhesion and migration.
Purpose of the Study:
- To review the mechanisms of glioma cell invasion in the brain.
- To highlight the role of ECM components and adhesion molecules in glioma cell migration.
- To discuss the impact of ECM heterogeneity on glioma invasion and treatment resistance.
Main Methods:
- Literature review focusing on glioma cell invasion and ECM interactions.
- Analysis of adhesion receptors (integrins, CD44) and proteases (PAs, MMPs, cathepsins) involved in invasion.
- Examination of ECM remodeling and its role in tumor cell spread.
Main Results:
- Glioma cells adhere to ECM components via integrins and CD44.
- Proteases like PAs, MMPs, and cathepsins facilitate ECM degradation and tumor cell infiltration.
- ECM heterogeneity in the brain significantly impacts glioma invasion dynamics.
Conclusions:
- Understanding glioma invasion mechanisms is crucial for developing effective therapies.
- Targeting cell-ECM interactions and protease activity may offer new therapeutic strategies.
- Addressing ECM modifications in tumoral brain environments is essential for preventing recurrence.
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