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首页> 外文期刊>Journal of Biomechanics >Endothelial cell response to biomechanical forces under simulated vascular loading conditions.
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Endothelial cell response to biomechanical forces under simulated vascular loading conditions.

机译:在模拟的血管负荷条件下,内皮细胞对生物力学力的反应。

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摘要

In vivo, endothelial cells (EC) are constantly exposed to the haemodynamic forces (HF) of pressure, wall shear stress and hoop stress. The main aim of this study was to design, create and validate a novel perfusion bioreactor capable of delivering shear stress and intravascular pressure to EC in vitro and to characterise their morphology, orientation and gene expression. Here we report the creation and validation of such a simulator and the dual application of pressure (120/60mmHg) and low shear stress (5dyn/cm(2)) to a monolayer of EC established on a non-compliant silicone tube. Under these conditions, EC elongated and realigned obliquely to the direction of applied shear stress in a time-dependent manner. Furthermore, randomly distributed F-actin microfilaments reorganised into long, dense stress fibres crossing the cells in a direction perpendicular to that of flow. Finally, combinatorial biomechanical conditioning of EC induced the expression of the inflammatory-associated E-selectin gene.
机译:在体内,内皮细胞(EC)不断受到压力,壁切应力和环向应力的血液动力(HF)的作用。这项研究的主要目的是设计,创建和验证一种新型的灌注生物反应器,该反应器能够在体外向EC传递剪切应力和血管内压力,并表征其形态,方向和基因表达。在这里,我们报告了这种模拟器的创建和验证,以及将压力(120 / 60mmHg)和低剪切应力(5dyn / cm(2))双重应用到在非顺应性硅胶管上建立的EC单层的情况。在这些条件下,EC以时间相关的方式沿与施加的切应力方向倾斜并重新排列。此外,随机分布的F-肌动蛋白微丝重组为长而密集的应力纤维,沿垂直于流动方向的方向穿过细胞。最后,EC的组合生物力学条件诱导了炎症相关的E-选择素基因的表达。

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