Endothelial cell alignment as a result of anisotropic strain and flow induced shear stress combinations

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作者
Ravi Sinha
Séverine Le Gac
Nico Verdonschot
Albert van den Berg
Bart Koopman
Jeroen Rouwkema
机构
[1] MIRA Institute for Biomedical Technology and Technical Medicine,Department of Biomechanical Engineering
[2] University of Twente,undefined
[3] Applied Microfluidics for BioEngineering Research group,undefined
[4] MIRA Institute for Biomedical Technology and Technical Medicine,undefined
[5] MESA+ Institute for Nanotechnology,undefined
[6] University of Twente,undefined
[7] Radboud university medical center,undefined
[8] Radboud Institute for Health Sciences,undefined
[9] Orthopaedic Research Lab,undefined
[10] BIOS,undefined
[11] Lab on a chip group,undefined
[12] MIRA Institute for Biomedical Technology and Technical Medicine,undefined
[13] MESA+ Institute for Nanotechnology,undefined
[14] University of Twente,undefined
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摘要
Endothelial cells (ECs) are continuously exposed in vivo to cyclic strain and shear stress from pulsatile blood flow. When these stimuli are applied in vitro, ECs adopt an appearance resembling their in vivo state, most apparent in their alignment (perpendicular to uniaxial strain and along the flow). Uniaxial strain and flow perpendicular to the strain, used in most in vitro studies, only represent the in vivo conditions in straight parts of vessels. The conditions present over large fractions of the vasculature can be better represented by anisotropic biaxial strains at various orientations to flow. To emulate these biological complexities in vitro, we have developed a medium-throughput device to screen for the effects on cells of variously oriented anisotropic biaxial strains and flow combinations. Upon the application of only strains for 24 h, ECs (HUVECs) aligned perpendicular to the maximum principal strain and the alignment was stronger for a higher maximum:minimum principal strain ratio. A 0.55 Pa shear stress, when applied alone or with strain for 24 h, caused cells to align along the flow. Studying EC response to such combined physiological mechanical stimuli was not possible with existing platforms and to our best knowledge, has not been reported before.
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