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Updated: Mar 29, 2026

Microfluidic Model to Mimic Initial Event of Neovascularization
Published on: April 10, 2021
An optically transparent membrane supports shear stress studies in a three-dimensional microfluidic neurovascular
Katelyn L Sellgren1, Brian T Hawkins1, Sonia Grego1
1RTI International , Research Triangle Park, North Carolina 27709-2194, USA.
Abstract:
We report a microfluidic blood-brain barrier model that enables both physiological shear stress and optical transparency throughout the device. Brain endothelial cells grown in an optically transparent membrane-integrated microfluidic device were able to withstand physiological fluid shear stress using a hydrophilized polytetrafluoroethylene nanoporous membrane instead of the more commonly used polyester membrane. A functional three-dimensional microfluidic co-culture model of the neurovascular unit is presented that incorporates astrocytes in a 3D hydrogel and enables physiological shear stress on the membrane-supported endothelial cell layer.

