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Updated: May 5, 2026

In Vitro Model Integrating Substrate Stiffness and Flow to Study Endothelial Cell Responses
Published on: July 19, 2024
High glucose attenuates shear-induced changes in endothelial hydraulic conductivity by degrading the glycocalyx
Sandra V Lopez-Quintero1, Limary M Cancel, Alexis Pierides
1Department of Biomedical Engineering, The City College of The City University of New York, New York, New York, United States of America ; Dominick P. Purpura Department of Neuroscience, Albert Einstein College of Medicine, Yeshiva University, Bronx, New York, United States of America.
Abstract:
Diabetes mellitus is a risk factor for cardiovascular disease; however, the mechanisms through which diabetes impairs homeostasis of the vasculature have not been completely elucidated. The endothelium interacts with circulating blood through the surface glycocalyx layer, which serves as a mechanosensor/transducer of fluid shear forces leading to biomolecular responses. Atherosclerosis localizes typically in regions of low or disturbed shear stress, but in diabetics, the distribution is more diffuse, suggesting that there is a fundamental difference in the way cells sense shear forces. In the present study, we examined the effect of hyperglycemia on mechanotranduction in bovine aortic endothelial cells (BAEC). After six days in high glucose media, we observed a decrease in heparan sulfate content coincident with a significant attenuation of the shear-induced hydraulic conductivity response, lower activation of eNOS after exposure to shear, and reduced cell alignment with shear stress. These studies are consistent with a diabetes-induced change to the glycocalyx altering endothelial response to shear stress that could affect the distribution of atherosclerotic plaques.
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