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首页> 外文期刊>Journal of biomechanical engineering. >A new in vitro model to evaluate differential responses of endothelial cells to simulated arterial shear stress waveforms.
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A new in vitro model to evaluate differential responses of endothelial cells to simulated arterial shear stress waveforms.

机译:一种新的体外模型,用于评估内皮细胞对模拟动脉切应力波形的差异反应。

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摘要

In the circulation, flow-responsive endothelial cells (ECs) lining the lumen of blood vessels are continuously exposed to complex hemodynamic forces. To increase our understanding of EC response to these dynamic shearing forces, a novel in vitro flow model was developed to simulate pulsatile shear stress waveforms encountered by the endothelium in the arterial circulation. A modified waveform modeled after flow patterns in the human abdominal aorta was used to evaluate the biological responsiveness of human umbilical vein ECs to this new type of stimulus. Arterial pulsatile flow for 24 hours was compared to an equivalent time-average steady laminar shear stress, using no flow (static) culture conditions as a baseline. While both flow stimuli induced comparable changes in cell shape and alignment, distinct patterns of responses were observed in the distribution of actin stress fibers and vinculin-associated adhesion complexes, intrinsic migratory characteristics, and the expression of eNOS mRNA and protein. These results thus reveal a unique responsiveness of ECs to an arterial waveform and begin to elucidate the complex sensing capabilities of the endothelium to the dynamic characteristics of flows throughout the human vascular tree.
机译:在循环中,衬在血管腔内的血流反应性内皮细胞(EC)持续暴露于复杂的血液动力中。为了增加我们对EC对这些动态剪切力的响应的了解,开发了一种新型的体外血流模型来模拟内皮在动脉循环中遇到的搏动剪切应力波形。在人类腹主动脉中的血流模式之后建模的修改波形用于评估人类脐静脉EC对这种新型刺激的生物学反应。使用无流量(静态)培养条件作为基准,将24小时的动脉搏动流量与等效时间平均稳态层流切应力进行比较。尽管两种流动刺激均引起细胞形状和排列的可比变化,但在肌动蛋白应激纤维和与蛋白纽蛋白相关的粘附复合物的分布,固有迁移特性以及eNOS mRNA和蛋白质的表达中观察到了不同的响应模式。因此,这些结果揭示了EC对动脉波形的独特响应性,并开始阐明内皮对整个人血管树中血流动态特性的复杂感知能力。

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