首页> 外文期刊>ACS applied materials & interfaces >Programmable Laser-Assisted Surface Microfabrication on a Poly(Vinyl Alcohol)-Coated Glass Chip with Self-Changing Cell Adhesivity for Heterotypic Cell Patterning
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Programmable Laser-Assisted Surface Microfabrication on a Poly(Vinyl Alcohol)-Coated Glass Chip with Self-Changing Cell Adhesivity for Heterotypic Cell Patterning

机译:具有自改变细胞粘附力的聚(乙烯醇)涂层玻璃芯片上的可编程激光辅助表面微细加工,用于异型细胞图案形成

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Organs are composed of heterotypic cells with patterned architecture that enables intercellular interaction to perform specific functions. In tissue engineering, the ability to pattern heterotypic cells into desired arrangement will allow us to model complex tissues in vitro and to create tissue equivalents for regeneration. This study was aimed at developing a method for fast heterotypic cell patterning with controllable topological manipulation on a glass chip. We found that poly(vinyl alcohol)-coated glass showed a biphasic change in adhesivity to cells in vitro: low adhesivity in the first 24 h and higher adhesivity at later hours due to increased serum protein adsorption. Combining programmable CO2 laser ablation to remove poly(vinyl alcohol) and glass, we were able to create arrays of adhesive microwells of adjustable patterns. We tested whether controllable patterns of epithelial-mesenchymal interaction could be created. When skin dermal papilla cells and fibroblasts were seeded respectively 24 h apart, we were able to pattern these two cells into aggregates of dermal papilla cells in arrays of microwells in a background of fibroblasts sheet. Seeded later, keratinocytes attached to these mesenchymal cells. Keratinocytes contacting dermal papilla cells started to differentiate toward a hair follicle fate, demonstrating pattemable epithelial-mesenchymal interaction. This method allows fast adjustable heterotypic cell patterning and surface topology control and can be applied to the investigation of heterotypic cellular interaction and creation of tissue equivalent in vitro.
机译:器官由具有模式结构的异型细胞组成,该模式使细胞间相互作用能够执行特定功能。在组织工程中,将异型细胞模式化为所需排列的能力将使我们能够在体外对复杂组织进行建模并创建用于再生的组织等效物。这项研究旨在开发一种在玻璃芯片上具有可控拓扑操作的快速异型细胞构图方法。我们发现,涂有聚乙烯醇的玻璃在体外对细胞的粘附性呈两相变化:由于血清蛋白吸附增加,在最初的24小时内粘附性较低,而在随后的小时中粘附性较高。结合可编程的CO2激光烧蚀去除聚乙烯醇和玻璃,我们能够创建可调节图案的粘合剂微孔阵列。我们测试了是否可以创建上皮-间质相互作用的可控模式。当分别将皮肤真皮乳头细胞和成纤维细胞分别接种24小时后,我们能够将这两种细胞模式化为成纤维细胞片背景中微孔阵列中的真皮乳头细胞聚集体。播种后,角质形成细胞附着在这些间充质细胞上。接触真皮乳头细胞的角质形成细胞开始向毛囊命运分化,证明了可图案化的上皮-间质相互作用。该方法允许快速可调节的异型细胞图案化和表面拓扑控制,并可应用于异型细胞相互作用的研究和体外组织等效的创建。

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