AbstractArterial hemodynamic shear stress and blood vessel stiffening both significantly influence the arterial endothelial cell (EC) phenotype and atherosclerosis progression, and both have been shown to signal through cell-matrix adhesions. However, the cooperative effects of fluid shear stress and matrix stiffness on ECs remain unknown. To investigate these cooperative effects, we cultured bovine aortic ECs on hydrogels matching the elasticity of the intima of compliant, young, or stiff, aging arteries. The cells were then exposed to laminar fluid shear stress of 12 dyn/cm2. Cells grown on more compliant matrices displayed increased elongation and tighter EC-cell junctions. Notably, cells cultured on more compliant substrates also showed...
Atherosclerosis develops preferentially at branches and curvatures of the arterial tree, where blood...
AbstractPurpose: Endothelial cells (ECs) are subjected to the physical forces induced by blood flow....
Atherosclerosis develops preferentially at branches and curvatures of the arterial tree, where blood...
AbstractArterial hemodynamic shear stress and blood vessel stiffening both significantly influence t...
Shear stress and the endothelium. Vascular endothelial cells (ECs) in vivo are influenced by two dis...
Different blood flow patterns in the arteries can alter the adaptive phenotype of vascular endotheli...
Endothelial cell (ECs) lining blood vessels express many mechanosensors, including platelet endothel...
Endothelial cell (ECs) lining blood vessels express many mechanosensors, including platelet endothel...
Shear stress and the endothelium. Vascular endothelial cells (ECs) in vivo are influenced by two dis...
Atherosclerosis prone regions of the vasculature are exposed to disturbed flow where low and oscilla...
Atherosclerosis prone regions of the vasculature are exposed to disturbed flow where low and oscilla...
[[abstract]]Atherosclerosis preferentially develops at branches and curvatures of the arterial tree,...
[[abstract]]Atherosclerosis preferentially develops at branches and curvatures of the arterial tree,...
Haemodynamic forces influence the functional properties of vascular endothelium. Endothelial cells (...
AbstractArterial endothelial cell (EC) responsiveness to flow is essential for normal vascular funct...
Atherosclerosis develops preferentially at branches and curvatures of the arterial tree, where blood...
AbstractPurpose: Endothelial cells (ECs) are subjected to the physical forces induced by blood flow....
Atherosclerosis develops preferentially at branches and curvatures of the arterial tree, where blood...
AbstractArterial hemodynamic shear stress and blood vessel stiffening both significantly influence t...
Shear stress and the endothelium. Vascular endothelial cells (ECs) in vivo are influenced by two dis...
Different blood flow patterns in the arteries can alter the adaptive phenotype of vascular endotheli...
Endothelial cell (ECs) lining blood vessels express many mechanosensors, including platelet endothel...
Endothelial cell (ECs) lining blood vessels express many mechanosensors, including platelet endothel...
Shear stress and the endothelium. Vascular endothelial cells (ECs) in vivo are influenced by two dis...
Atherosclerosis prone regions of the vasculature are exposed to disturbed flow where low and oscilla...
Atherosclerosis prone regions of the vasculature are exposed to disturbed flow where low and oscilla...
[[abstract]]Atherosclerosis preferentially develops at branches and curvatures of the arterial tree,...
[[abstract]]Atherosclerosis preferentially develops at branches and curvatures of the arterial tree,...
Haemodynamic forces influence the functional properties of vascular endothelium. Endothelial cells (...
AbstractArterial endothelial cell (EC) responsiveness to flow is essential for normal vascular funct...
Atherosclerosis develops preferentially at branches and curvatures of the arterial tree, where blood...
AbstractPurpose: Endothelial cells (ECs) are subjected to the physical forces induced by blood flow....
Atherosclerosis develops preferentially at branches and curvatures of the arterial tree, where blood...