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Generation of an Immortalized Murine Brain Microvascular Endothelial Cell Line as an In Vitro Blood Brain Barrier Model
Published on: August 29, 2012
Construction and optimization of a coculture system of mouse brain microvascular endothelial cells and myelin debris
Chengjie Wu1, Lei Shi2, Yong Ma3
1Department of Traumatology and Orthopedics, Affiliated Hospital of Nanjing University of Chinese Medicine, Nanjing, China; Laboratory of New Techniques of Restoration & Reconstruction, Institute of Traumatology & Orthopedics, Nanjing University of Chinese Medicine, Nanjing, China.
Abstract:
Microvascular endothelial cells are a newly discovered cell type involved in the phagocytosis of myelin debris, which play a key role in the repair of spinal cord injuries. Several methods for the preparation of myelin debris and parameters for constructing a coculture system of microvascular endothelial cells and myelin debris are available, but no systematic studies have yet been conducted, which hinders further exploration of the mechanisms of demyelinating disease repair. Herein, we aimed to develop a standardized method for this process. Myelin debris of different sizes was obtained from the brains of C57BL/6 mice by stripping the brains under aseptic conditions, multiple grinding, gradient centrifugation, etc. Transmission electron microscopy and nanoparticle size analysis were used to characterize myelin debris. Microvascular endothelial cells were cultured on a matrix gel, and myelin debris of different sizes (fluorescently labeled using CFSE) was placed in coculture after forming a vascular-like structure. Subsequently, myelin debris of different concentrations was cocultured in the vascular-like structure, and phagocytosis of myelin debris by microvascular endothelial cells was detected using immunofluorescence staining and flow cytometry. We found that myelin debris could be successfuly obtained from the mouse brain with secondary grinding and other steps and cocultured with microvascular endothelial cells at a concentration of 2 mg/mL, which promoted the phagocytosis of microvascular endothelial cells. In conclusion, we provide a reference for the protocol of a coculture system of microvascular endothelial cells and myelin debris.
Insights
This study establishes a standardized method for co-culturing microvascular endothelial cells with myelin debris, crucial for understanding spinal cord injury repair and demyelinating diseases.
Area of Science:
- Neuroscience
- Cell Biology
- Regenerative Medicine
Background:
- Microvascular endothelial cells (MVECs) are newly identified phagocytes of myelin debris.
- Myelin debris clearance is vital for spinal cord injury (SCI) repair.
- Lack of standardized co-culture methods hinders research into demyelinating diseases.
Purpose of the Study:
- To develop a standardized protocol for co-culturing MVECs and myelin debris.
- To investigate the phagocytosis of myelin debris by MVECs in a controlled system.
- To provide a foundation for studying demyelinating disease mechanisms.
Main Methods:
- Myelin debris isolation from C57BL/6 mouse brains using aseptic stripping, grinding, and gradient centrifugation.
- Characterization of myelin debris size via transmission electron microscopy and nanoparticle analysis.
- Co-culturing fluorescently labeled myelin debris with MVECs on a matrix gel to form vascular-like structures, followed by phagocytosis assessment using immunofluorescence and flow cytometry.
Main Results:
- A reproducible method for obtaining mouse brain myelin debris was established.
- Co-culture of MVECs with myelin debris at 2 mg/mL concentration significantly promoted phagocytosis.
- Successful visualization and quantification of myelin debris phagocytosis by MVECs.
Conclusions:
- A standardized co-culture system for MVECs and myelin debris was successfully developed.
- This protocol facilitates further investigation into the role of MVECs in myelin debris clearance and SCI repair.
- Provides a valuable reference for researchers studying neuroinflammation and regenerative processes.

