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A Novel Impedance Biosensor for Measurement of Trans-Epithelial Resistance in Cells Cultured on Nanofiber Scaffolds

机译:一种新型阻抗生物传感器,用于测量纳米纤维支架上培养细胞的跨上皮性抗性

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摘要

Nanofibrous scaffolds provide high surface area for cell attachment, and resemble the structure of the collagen fibers which naturally occur in the basement membrane and extracellular matrix. A label free and non-destructive method of assessing the interaction of cell tissue and scaffolds aids in the ability to discern the effective quality and magnitude of any scaffold modifications. Impedance cell spectroscopy is a biosensing method that employs a functional approach to assessing the cell monolayer. The electrical impedance barrier function of a cell monolayer represents the level of restriction to diffusion of charged species between all adjacent cells across an entire contiguous cellular monolayer. The impedance signals from many individual paracellular pathways contribute to the bulk measurement of the whole monolayer barrier function. However, the scaffold substrate must be entirely porous in order to be used with electrochemical cell impedance spectroscopy (ECIS) and cells must be closely situated to the electrodes. For purposes of evaluating cell-scaffold constructs for tissue engineering, non-invasive evaluation of cell properties while seeded on scaffolds is critical. A Transwell-type assay makes a measurement across a semi-permeable membrane, using electrodes placed on opposing sides of the membrane immersed in fluid. It was found that by suspending a nanofiber scaffold across a Transwell aperture, it is possible to integrate a fully functional nanofiber tissue scaffold with the ECIS Transwell apparatus. Salivary epithelial cells were grown on the nanofiber scaffolds and tight junction formation was evaluated using ECIS measurements in parallel with immunostaining and confocal imaging. The trans-epithelial resistance increased coordinate with cell coverage, culminating with a cell monolayer, at which point the tight junction proteins assemble and strengthen, reaching the peak signal. These studies demonstrate that ECIS can be used to evaluate tight junction formation in cells grown on nanofiber scaffolds and on effects of scaffold conditions on cells, thus providing useful biological feedback to inform superior scaffold designs.
机译:纳米纤维支架为细胞附着提供高表面积,并且类似于在基底膜和细胞外基质中自然发生的胶原纤维的结构。一种自由和非破坏性的方法,可评估细胞组织和支架辅助的相互作用的能力辨别任何支架修饰的有效质量和大小的能力。阻抗细胞光谱是一种生物传感方法,采用功能方法来评估细胞单层。电池单层的电阻抗屏障功能表示对整个连续的细胞单层的所有相邻细胞之间的带电物质的限制的限制水平。来自许多单独的肺平途径的阻抗信号有助于整体单层屏障功能的体积测量。然而,支架基材必须完全多孔,以便与电化学电池阻抗谱(ECIS)和电池密切相关,并且电池必须紧密地位于电极上。出于评估用于组织工程的细胞支架构建体,对细胞性质的非侵入性评估在播种在支架上是至关重要的。 Transwell型测定在半透膜上测量,使用放置在浸入流体中的膜的相对侧上的电极。发现通过将纳米纤维支架悬挂在翻转孔上,可以将全功能的纳米纤维组织支架与ECIS Transwell装置集成。在纳米纤维支架上生长唾液上皮细胞,使用与免疫染色和共聚焦成像平行的ECIS测量评估紧密结形成。横向上皮抗性与细胞覆盖率的坐标增加,与细胞单层覆盖,此时,此时紧密结蛋白组装和加强,达到峰值信号。这些研究表明,ECIS可用于评估在纳米纤维支架上生长的细胞的紧密结形成以及支架条件对细胞的影响,从而提供有用的生物反馈,以通知优异的支架设计。

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