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Fluidic self-assembly of multilayered tubular microstructures by axis translation inside two-layered microfluidic devices

机译:多层管状微结构的流体自组装通过两层微流控装置内部的轴平移

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Microfluidic devices provide efficient approaches for building cellular tubular structures for in vitro tissue models in tissue engineering. In this paper, we report a novel method of constructing three-dimensional (3D) multilayered tubular structures based on axis translation of two-dimensionally (2D) microstructures inside microfluidic devices. The on-chip fabrication of movable 2D microstructures embedding fibroblasts (NIH/3T3) based on Poly (ethylene glycol) Diacrylate (PEGDA) was reported. Novel two-layered microfluidic devices were fabricated by Polydimethylsiloxane (PDMS), for conducting the fluidic self-assembly of the 2D microstructures. The self-assembly process was experimentally demonstrated. For improving the assembly results, a funneled structure and 3 micro grooves were added inside the microfluidic channel. Improved self-assembly result of constructing a multilayered tubular microstructure with higher efficiency was demonstrated.
机译:微流体装置为组织工程中的体外组织模型提供了构建细胞管状结构的有效方法。在本文中,我们报告了一种基于微流体装置内部二维(2D)微结构的轴平移构造三维(3D)多层管状结构的新方法。报道了基于聚乙二醇二丙烯酸酯(PEGDA)的嵌入纤维母细胞(NIH / 3T3)的可移动2D微结构的芯片制造。新型的两层微流控设备是由聚二甲基硅氧烷(PDMS)制造的,用于进行二维微结构的流体自组装。实验证明了自组装过程。为了改善组装结果,在微流体通道内部添加了漏斗状结构和3个微凹槽。证明了构建具有更高效率的多层管状微结构的改进的自组装结果。

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