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A Microfluidic System for Studying the Effects of Disturbed Flow on Endothelial Cells

机译:微流控系统用于研究扰动的血流对内皮细胞的影响

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摘要

Arterial endothelium experience physical stress associated with blood flow and play a central role in maintaining vascular integrity and homeostasis in response to hemodynamic forces. Blood flow within vessels is generally laminar and streamlined. However, abrupt changes in the vessel geometry due to branching, sharp turns or stenosis can disturb the laminar blood flow, causing secondary flows in the form of vortices. Such disturbed flow patterns activate pro-inflammatory phenotypes in endothelial cells, damaging the endothelial layer and can lead to atherosclerosis and thrombosis. Here, we report a microfluidic system with integrated ridge-shaped obstacles for generating controllable disturbed flow patterns. This system is used to study the effect of disturbed flow on the cytoskeleton remodeling and nuclear shape and size of cultured human aortic endothelial cells. Our results demonstrate that the generated disturbed flow changes the orientation angle of actin stress fibers and reduces the nuclear size while increases the nuclear circularity.
机译:动脉内皮经受与血流有关的物理压力,并在响应于血流动力学力而维持血管完整性和体内平衡中发挥重要作用。血管内的血流通常呈层流状。但是,由于分支,急转弯或狭窄引起的血管几何形状的突然变化会干扰层流,从而导致涡流形式的二次流。这种紊乱的流动模式激活了内皮细胞中的促炎表型,破坏了内皮层并可能导致动脉粥样硬化和血栓形成。在这里,我们报告了一个微流体系统,带有集成的脊状障碍物,用于产生可控的扰动流型。该系统用于研究扰动血流对培养的人主动脉内皮细胞的细胞骨架重塑以及细胞核形状和大小的影响。我们的结果表明,产生的扰动流改变了肌动蛋白应力纤维的取向角,减小了核尺寸,同时增加了核圆度。

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