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Published on: February 8, 2017
MMP9 Clears the Way for Metastatic Cell Penetration Across the Blood-Brain Barrier
1Department of Neurosurgery, University of Texas MD Anderson Cancer Center, Houston, Texas.
Abstract:
Although brain metastases are 10-fold more prevalent than primary brain cancers, relatively little is understood about the genes and pathways that promote metastatic cell entry, growth, and survival in the brain. Hence, determining how metastatic tumors colonize the brain and thrive within the neural microenvironment is a topic of both fundamental importance and direct clinical relevance. In this issue, a report by Karreman and colleagues explores pathways that are exploited by metastatic tumor cells to arrest in the circulation, cross the endothelial blood-brain barrier (BBB), and thrive in the brain microenvironment. The authors used elegant imaging tools including intravital fluorescence microcopy and serial reconstruction of ultrastructural sections to analyze BBB breach and subsequent colonization of the brain. They show that matrix metalloprotease 9 (MMP9) plays a central role in these events. Pharmacologic or genetic targeting of MMP9 significantly reduced penetration across the BBB and limited micrometastasis formation. Surprisingly, extravasation and brain colonization does not involve significant degradation of canonical MMP9 protein targets such as collagen and laminin in vascular basement membranes, indicating the requirement for other extracellular matrix (ECM) or non-ECM substrates for MMP9. Collectively, these new and important findings reveal cell-cell adhesion and signaling events between cerebral endothelial and metastatic cancer cells as well as identify potential therapeutic targets to prevent metastatic tumor cell dissemination in the brain. See related article by Karreman et al., p. 1299.
Insights
Matrix metalloprotease 9 (MMP9) is crucial for cancer cells to enter and grow in the brain. Targeting MMP9 effectively reduced brain micrometastasis, revealing new therapeutic strategies for brain cancer.
Area of Science:
- Neuroscience
- Oncology
- Cell Biology
Background:
- Brain metastases are more common than primary brain tumors, yet the underlying mechanisms remain poorly understood.
- Understanding how cancer cells colonize the brain is vital for both fundamental research and clinical applications.
Discussion:
- Karreman and colleagues investigated pathways enabling metastatic tumor cells to breach the blood-brain barrier (BBB).
- Advanced imaging techniques, including intravital fluorescence microscopy, were employed to analyze BBB penetration and brain colonization.
- Matrix metalloprotease 9 (MMP9) was identified as a key enzyme facilitating these processes.
Key Insights:
- Targeting MMP9 pharmacologically or genetically significantly inhibited BBB penetration and reduced micrometastasis formation in the brain.
- Surprisingly, MMP9's role in brain colonization did not rely on degrading typical targets like collagen and laminin in basement membranes.
- This suggests MMP9 utilizes alternative extracellular matrix or non-ECM substrates for its function.
Outlook:
- The study highlights the importance of cell-cell adhesion and signaling between brain endothelial cells and metastatic cancer cells.
- These findings identify novel therapeutic targets for preventing the spread of cancer to the brain.
- Further research into MMP9's non-canonical substrates could lead to more effective anti-metastasis treatments.
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