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Multi-Channeled Polymeric Microsystem for Studying the Impact of Surface Topography on Cell Adhesion and Motility

机译:用于研究表面形貌对细胞粘附和运动性影响的多通道聚合物微系统

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摘要

This paper presents the complete development and experimental validation of a microsystem designed to systematically assess the impact of surface topography on cell adhesion and dynamics. The microsystem includes two pools for culturing cells and for including chemicals. These pools are connected by several channels that have different microtextures, along which the cells crawl from one well to another. The impact of channel surface topography on cell performance, as well as the influence of other relevant factors, can therefore be assessed. The microsystem stands out for its being able to precisely define the surface topographies from the design stage and also has the advantage of including the different textures under study in a single device. Validation has been carried out by culturing human mesenchymal stem cells (hMSCs) on the microsystem pre-treated with a coating of hMSC conditioned medium (CM) produced by these cells. The impact of surface topography on cell adhesion, motility, and velocity has been quantified, and the relevance of using a coating of hMSC-CM for these kinds of studies has been analyzed. Main results, current challenges, and future proposals based on the use of the proposed microsystem as an experimental resource for studying cell mechanobiology are also presented.
机译:本文介绍了一个微系统的完整开发和实验验证,该系统旨在系统评估表面形貌对细胞粘附和动力学的影响。该微系统包括两个池,用于培养细胞和包含化学物质。这些池通过具有不同微观纹理的多个通道连接,沿着这些通道,细胞从一个孔爬到另一个孔。因此,可以评估通道表面形貌对细胞性能的影响以及其他相关因素的影响。该微系统因能够从设计阶段精确定义表面形貌而引人注目,并且还具有在单个设备中包含正在研究的不同纹理的优点。通过在用这些细胞产生的hMSC条件培养基(CM)涂层预处理的微系统上培养人间充质干细胞(hMSC)来进行验证。已经量化了表面形貌对细胞粘附,运动性和速度的影响,并分析了使用hMSC-CM涂层进行此类研究的相关性。还介绍了基于使用拟议的微系统作为研究细胞力学生物学实验资源的主要结果,当前的挑战和未来的提议。

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