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Effect of Perfusion Culture on Localization, Intensity, and Functionality of Transporter Proteins in a Bilayer Proximal Tubule-on-a Chip

机译:灌注培养对双层近端小管中转运蛋白的定位,强度和功能的影响

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A biomimetic proximal tubule on-a-chip (PToC) comprised of isolated endothelial and epithelial microchannels along with a custom-made culture media perfusion system is presented. The microfluidic setup enables independently-addressable perfusion of epithelial and endothelial culture media for optimum bilayer health and function. It was shown for the first time that flow-induced shear stress not only enhances the expression level of megalin, a major proximal tubule transmembrane protein involved in albumin transcytosis, but also increases the chance of its presence/activity in the cytosol milieu. Albumin reabsorption capacity of the bilayer was improved through the epithelium subjected to shear stress, the cell height was increased, and the apical microvilli were fortified.
机译:提出了由分离的内皮和上皮微通道组成的仿生近端管(PTOC)以及定制培养介质灌注系统。微流体设置可实现上皮和内皮培养介质的独立可寻性的灌注,以获得最佳的双层健康和功能。它首次显示流动诱导的剪切应力不仅增强了甘氨酸的表达水平,涉及白蛋白转红菌病的主要近端小管跨膜蛋白,而且还增加了在细胞溶质Milieu中存在/活性的机会。通过对剪切应力进行剪切应力的上皮改善双层的白蛋白重吸收能力,细胞高度增加,并且端顶微毛虫被强化。

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