剪切应力下上皮细胞培养的3D打印Transwell微流体装置

IF 4.6 Q1 CHEMISTRY, ANALYTICAL
Khamhbawihum Cenhrang, Cody W. Leasor, Waruna Thotamune, Ajith Karunarathne, Lane A. Baker and R. Scott Martin*, 
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引用次数: 0

摘要

在本文中,我们描述了如何使用3D打印来制造基于微流体的transwell细胞培养系统,该系统具有强大的流体连接,可用于长期细胞培养和循环流动。这种方法包括一个电纺丝胶原蛋白支架夹在两个激光切割的特氟龙膜之间,与流体设计相匹配。将Madin-Darby犬肾细胞(MDCK)培养在胶原支架上形成上皮细胞单层。通过打印的储层将细胞导入设备,可以在适当的细胞播种后关闭,对细胞流动剖面的影响最小。由此产生的MDCK细胞单层暴露于细胞层的连续流动和运输中,可以通过基底侧通道网络采样来监测。使用COMSOL模拟和流动注入分析来确定储层几何形状对细胞经历的剪切应力的影响。在这个模型中,我们使用了多种分析工具来评估流动对细胞的影响。这包括共聚焦显微镜和电位扫描离子电导显微镜(以确定形态和电导),以及跨内皮/上皮电阻(TEER)测量和逆转录定量聚合酶链反应研究(用于基因表达分析)。最后,使用两种药物(咖啡因和地高辛)进行细胞模型的药物转运研究,以确定高通透性和低通透性药物的表观通透性,结果与体内研究的结果相似,也与转染mdck形成更具抗性屏障的研究结果相似。这种方法为建立更多类似于体内的、基于流动的运输研究屏障模型带来了巨大的希望。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
3D Printed Transwell Microfluidic Devices for Epithelial Cell Culture with Shear Stress

In this paper, we describe how 3D printing can be used to fabricate a microfluidic-based transwell cell culture system with robust fluidic connections for long-term cell culture and recirculating flow. This approach consists of an electrospun collagen scaffold sandwiched between two laser-cut Teflon membranes that match the fluidic design. Madin-Darby canine kidney (MDCK) cells were cultured on the collagen scaffold to create an epithelial cell monolayer. Introduction of cells into the device was facilitated by a printed reservoir that could be closed after proper cell seeding with minimal effect of the flow profile over the cells. The resulting MDCK cell monolayer was exposed to continuous flow and transport through the cell layer and could be monitored by sampling from the basolateral channel network. COMSOL simulations and flow injection analysis were used to determine the effect of the reservoir geometry on the shear stress that cells experience. A variety of analytical tools were used to assess the effect of flow over the cells in this model. This includes confocal microscopy and potentiometric scanning ion conductance microscopy (to determine morphology and conductance), as well as transendothelial/epithelial electrical resistance (TEER) measurements and reverse transcription-quantitative polymerase chain reaction studies (for gene expression analysis). Finally, a drug transport study with the cell model was carried out using two drugs (caffeine and digoxin) to determine the apparent permeability of high and low permeability drugs, with results being similar to findings from in vivo studies as well as studies where MDCKs have been transfected to form more resistive barriers. This approach holds great promise for the creation of more in vivo-like, flow-based barrier models for transport studies.

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来源期刊
ACS Measurement Science Au
ACS Measurement Science Au 化学计量学-
CiteScore
5.20
自引率
0.00%
发文量
0
期刊介绍: ACS Measurement Science Au is an open access journal that publishes experimental computational or theoretical research in all areas of chemical measurement science. Short letters comprehensive articles reviews and perspectives are welcome on topics that report on any phase of analytical operations including sampling measurement and data analysis. This includes:Chemical Reactions and SelectivityChemometrics and Data ProcessingElectrochemistryElemental and Molecular CharacterizationImagingInstrumentationMass SpectrometryMicroscale and Nanoscale systemsOmics (Genomics Proteomics Metabonomics Metabolomics and Bioinformatics)Sensors and Sensing (Biosensors Chemical Sensors Gas Sensors Intracellular Sensors Single-Molecule Sensors Cell Chips Arrays Microfluidic Devices)SeparationsSpectroscopySurface analysisPapers dealing with established methods need to offer a significantly improved original application of the method.
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