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Heparan Sulfate Regrowth Profiles Under Laminar Shear Flow Following Enzymatic Degradation

机译:酶降解后层流剪切流下乙酰肝素硫酸盐的再生特征

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摘要

The local hemodynamic shear stress waveforms present in an artery dictate the endothelial cell phenotype. The observed decrease of the apical glycocalyx layer on the endothelium in atheroprone regions of the circulation suggests that the glycocalyx may have a central role in determining atherosclerotic plaque formation. However, the kinetics for the cells’ ability to adapt its glycocalyx to the environment have not been quantitatively resolved. Here we report that the heparan sulfate component of the glycocalyx of HUVECs increases by 1.4-fold following the onset of high shear stress, compared to static cultured cells, with a time constant of 19 h. Cell morphology experiments show that 12 h are required for the cells to elongate, but only after 36 h have the cells reached maximal alignment to the flow vector. Our findings demonstrate that following enzymatic degradation, heparan sulfate is restored to the cell surface within 12 h under flow whereas the time required is 20 h under static conditions. We also propose a model describing the contribution of endocytosis and exocytosis to apical heparan sulfate expression. The change in HS regrowth kinetics from static to high-shear EC phenotype implies a differential in the rate of endocytic and exocytic membrane turnover.
机译:动脉中存在的局部血液动力学切应力波形决定了内皮细胞的表型。在循环的动脉粥样硬化区域中观察到的在内皮上的顶端糖萼层减少,这表明糖萼可能在确定动脉粥样硬化斑块形成中起中心作用。但是,细胞对糖萼适应环境的能力的动力学尚未得到定量解决。在这里我们报告说,与静态培养细胞相比,HUVECs糖萼中的硫酸乙酰肝素成分在高剪切应力发生后增加了1.4倍,其时间常数为19 h。细胞形态实验表明,细胞伸长需要12小时,但只有在36小时之后,细胞才能与流载体达到最大对齐。我们的发现表明,经酶促降解后,硫酸乙酰肝素在流动条件下可在12小时内恢复到细胞表面,而在静态条件下所需的时间为20小时。我们还提出了一个模型,描述了内吞作用和胞吐作用对根尖硫酸乙酰肝素表达的贡献。 HS再生动力学从静态表型变为高剪切EC表型的变化暗示着内吞膜和胞外膜更新的速率不同。

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