首页> 美国卫生研究院文献>Journal of Visualized Experiments : JoVE >The Assembly and Application of Shear Rings: A Novel Endothelial Model for Orbital Unidirectional and Periodic Fluid Flow and Shear Stress
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The Assembly and Application of Shear Rings: A Novel Endothelial Model for Orbital Unidirectional and Periodic Fluid Flow and Shear Stress

机译:剪切环的组装和应用:一种用于轨道单向和周期性流体流动和剪切应力的新型内皮模型

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摘要

Deviations from normal levels and patterns of vascular fluid shear play important roles in vascular physiology and pathophysiology by inducing adaptive as well as pathological changes in endothelial phenotype and gene expression. In particular, maladaptive effects of periodic, unidirectional flow induced shear stress can trigger a variety of effects on several vascular cell types, particularly endothelial cells. While by now endothelial cells from diverse anatomic origins have been cultured, in-depth analyses of their responses to fluid shear have been hampered by the relative complexity of shear models (e.g., parallel plate flow chamber, cone and plate flow model). While these all represent excellent approaches, such models are technically complicated and suffer from drawbacks including relatively lengthy and complex setup time, low surface areas, requirements for pumps and pressurization often requiring sealants and gaskets, creating challenges to both maintenance of sterility and an inability to run multiple experiments. However, if higher throughput models of flow and shear were available, greater progress on vascular endothelial shear responses, particularly periodic shear research at the molecular level, might be more rapidly advanced. Here, we describe the construction and use of shear rings: a novel, simple-to-assemble, and inexpensive tissue culture model with a relatively large surface area that easily allows for a high number of experimental replicates in unidirectional, periodic shear stress studies on endothelial cells.
机译:通过诱导内皮表型和基因表达的适应性以及病理性变化,偏离正常水平和模式的血管液在血管生理和病理生理中起重要作用。特别地,周期性的,单向流动引起的剪切应力的不良适应作用可以触发对几种血管细胞类型,特别是内皮细胞的多种作用。虽然目前已经培养了来自多种解剖学起源的内皮细胞,但是由于剪切模型(例如,平行板流动室,圆锥和板流动模型)的相对复杂性,妨碍了它们对流体剪切反应的深入分析。尽管所有这些方法都代表了出色的方法,但此类模型在技术上很复杂,并且存在以下缺点:相对较长且复杂的设置时间,较低的表面积,对泵的要求以及经常需要密封剂和垫圈的加压,这对维持无菌性和不稳定性造成了挑战。运行多个实验。但是,如果可以使用更高通量的流动和剪切模型,那么血管内皮剪切反应的更大进展,尤其是在分子水平上的周期性剪切研究,可能会更快地发展。在这里,我们描述剪切环的构造和使用:一种新颖,易于组装且价格便宜的组织培养模型,具有相对较大的表面积,可以轻松地在单向,周期性剪切应力研究中进行大量实验重复内皮细胞。

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