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Updated: Mar 31, 2026

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Published on: August 2, 2019
Traction Forces of Endothelial Cells under Slow Shear Flow
Cecile M Perrault1, Agusti Brugues2, Elsa Bazellieres2
1Institute for In Silico Medicine, University of Sheffield, Sheffield, United Kingdom; Department of Mechanical Engineering, University of Sheffield, Sheffield, United Kingdom; Institute for Bioengineering of Catalonia, Barcelona, Spain.
Abstract:
Endothelial cells are constantly exposed to fluid shear stresses that regulate vascular morphogenesis, homeostasis, and disease. The mechanical responses of endothelial cells to relatively high shear flow such as that characteristic of arterial circulation has been extensively studied. Much less is known about the responses of endothelial cells to slow shear flow such as that characteristic of venous circulation, early angiogenesis, atherosclerosis, intracranial aneurysm, or interstitial flow. Here we used a novel, to our knowledge, microfluidic technique to measure traction forces exerted by confluent vascular endothelial cell monolayers under slow shear flow. We found that cells respond to flow with rapid and pronounced increases in traction forces and cell-cell stresses. These responses are reversible in time and do not involve reorientation of the cell body. Traction maps reveal that local cell responses to slow shear flow are highly heterogeneous in magnitude and sign. Our findings unveil a low-flow regime in which endothelial cell mechanics is acutely responsive to shear stress.
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