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Fabrication of Orientation-Controlled 3D Tissues Using a Layer-by-Layer Technique and 3D Printed a Thermoresponsive Gel Frame

机译:使用层逐层技术和3D制造取向控制的3D组织和3D印刷热响应凝胶框架

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Herein, we report the fabrication of orientation-controlled tissues similar to heart and nerve tissues using a cell accumulation and three-dimensional (3D) printing technique. We first evaluated the 3D shaping ability of hydroxybutyl chitosan (HBC), a thermoresponsive polymer, by using a robotic dispensing 3D printer. HBC polymer could be laminated to a height of 1124 +/- 14 mu m. Based on this result, we fabricated 3D gel frames of various shapes, such as square, triangular, rectangular, and circular, for shape control of 3D tissue and then normal human cardiac fibroblasts (NHCFs) coated with extracellular matrix nanofilms were seeded in the frames. Observation of shape-controlled tissues after 1 day of cultivation showed that the orientation of fibroblasts was in one direction when a short-sided, thin, rectangular-shaped frame was used. Next, we tried to fabricate orientation-controlled tissue with a vascular network by coculturing NHCF and normal human cardiac microvascular endothelial cells. As a consequence of cultivation for 4 days, observation of cocultured tissue confirmed aligned cells and blood capillaries in orientation-controlled tissue. Our results clearly demonstrated that it would be possible to control the cell orientation by controlling the shape of the tissues by combining a cell accumulation technique and a 3D printing system. The results of this study suggest promising strategies for the fabrication of oriented 3D tissues in vitro. These tissues, mimicking native organ structures, such as muscle and nerve tissue with a cell alignment structure, would be useful for tissue engineering, regenerative medicine, and pharmaceutical applications.
机译:在此,我们使用细胞累积和三维(3D)印刷技术报告了类似于心脏和神经组织的取向控制组织的制备。我们首先通过使用机器人分配3D打印机评估羟基丁糖壳聚糖(HBC),热值聚合物的3D成型能力。 HBC聚合物可以层压到1124 +/-14μm的高度。基于该结果,我们制造了各种形状的3D凝胶框架,例如正方形,三角形,矩形和圆形,用于3D组织的形状控制,然后在框架中接种涂覆有细胞外基质纳米丝的正常人体心肌成纤维细胞(NHCF) 。在培养1天后观察形状控制组织显示,当使用短边薄的矩形框架时,成纤维细胞的取向在一个方向上。接下来,我们试图通过通过培养NHCF和正常人体心血管内皮细胞用血管网络制造定向控制的组织。由于培养4天的结果,观察与携带的组织确认在取向控制组织中的对齐细胞和血小毛细血管。我们的结果清楚地证明了通过组合细胞累积技术和3D打印系统来通过控制组织的形状来控制细胞取向。本研究的结果表明了在体外制造导向的3D组织的有希望的策略。这些组织,模仿原生器官结构,例如肌肉和神经组织与细胞取向结构,可用于组织工程,再生医学和药物应用。

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