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Transwell小室和微流控双层装置中上皮/内皮屏障的通透性

Permeability of Epithelial/Endothelial Barriers in Transwells and Microfluidic Bilayer Devices.

作者信息

Frost Timothy S, Jiang Linan, Lynch Ronald M, Zohar Yitshak

机构信息

Department of Biomedical Engineering, University of Arizona, Tucson, AZ 85721, USA.

Department of Aerospace and Mechanical Engineering, University of Arizona, Tucson, AZ 85721, USA.

出版信息

Micromachines (Basel). 2019 Aug 13;10(8):533. doi: 10.3390/mi10080533.

Abstract

Lung-on-a-chip (LoC) models hold the potential to rapidly change the landscape for pulmonary drug screening and therapy, giving patients more advanced and less invasive treatment options. Understanding the drug absorption in these microphysiological systems, modeling the lung-blood barrier is essential for increasing the role of the organ-on-a-chip technology in drug development. In this work, epithelial/endothelial barrier tissue interfaces were established in microfluidic bilayer devices and transwells, with porous membranes, for permeability characterization. The effect of shear stress on the molecular transport was assessed using known paracellular and transcellular biomarkers. The permeability of porous membranes without cells, in both models, is inversely proportional to the molecular size due to its diffusivity. Paracellular transport, between epithelial/endothelial cell junctions, of large molecules such as transferrin, as well as transcellular transport, through cell lacking required active transporters, of molecules such as dextrans, is negligible. When subjected to shear stress, paracellular transport of intermediate-size molecules such as dextran was enhanced in microfluidic devices when compared to transwells. Similarly, shear stress enhances paracellular transport of small molecules such as Lucifer yellow, but its effect on transcellular transport is not clear. The results highlight the important role that LoC can play in drug absorption studies to accelerate pulmonary drug development.

摘要

肺芯片(LoC)模型有潜力迅速改变肺部药物筛选和治疗的局面,为患者提供更先进、侵入性更小的治疗选择。了解这些微生理系统中的药物吸收情况,对肺血屏障进行建模,对于增强芯片器官技术在药物开发中的作用至关重要。在这项工作中,在带有多孔膜的微流体双层装置和Transwell小室中建立上皮/内皮屏障组织界面,用于渗透性表征。使用已知的细胞旁和跨细胞生物标志物评估剪切应力对分子转运的影响。在这两种模型中,无细胞多孔膜的渗透性因其扩散性而与分子大小成反比。转铁蛋白等大分子在上皮/内皮细胞连接处的细胞旁转运,以及葡聚糖等分子在缺乏所需主动转运蛋白的细胞中的跨细胞转运,都可以忽略不计。与Transwell小室相比,在微流体装置中,当受到剪切应力时,中等大小分子如葡聚糖的细胞旁转运增强。同样,剪切应力增强了小分子如荧光素黄的细胞旁转运,但其对跨细胞转运的影响尚不清楚。这些结果突出了肺芯片在药物吸收研究中对加速肺部药物开发所起的重要作用。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/b1d8/6722679/d33ef706ac1c/micromachines-10-00533-g001.jpg

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