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大体积组织的三维细胞打印:在耳部再生中的应用。

Three-Dimensional Cell Printing of Large-Volume Tissues: Application to Ear Regeneration.

作者信息

Lee Jung-Seob, Kim Byoung Soo, Seo Donghwan, Park Jeong Hun, Cho Dong-Woo

机构信息

Department of Mechanical Engineering, Pohang University of Science and Technology (POSTECH) , Pohang, Korea.

出版信息

Tissue Eng Part C Methods. 2017 Mar;23(3):136-145. doi: 10.1089/ten.TEC.2016.0362. Epub 2017 Feb 16.

DOI:10.1089/ten.TEC.2016.0362
PMID:28093047
Abstract

The three-dimensional (3D) printing of large-volume cells, printed in a clinically relevant size, is one of the most important challenges in the field of tissue engineering. However, few studies have reported the fabrication of large-volume cell-printed constructs (LCCs). To create LCCs, appropriate fabrication conditions should be established: Factors involved include fabrication time, residence time, and temperature control of the cell-laden hydrogel in the syringe to ensure high cell viability and functionality. The prolonged time required for 3D printing of LCCs can reduce cell viability and result in insufficient functionality of the construct, because the cells are exposed to a harsh environment during the printing process. In this regard, we present an advanced 3D cell-printing system composed of a clean air workstation, a humidifier, and a Peltier system, which provides a suitable printing environment for the production of LCCs with high cell viability. We confirmed that the advanced 3D cell-printing system was capable of providing enhanced printability of hydrogels and fabricating an ear-shaped LCC with high cell viability. In vivo results for the ear-shaped LCC also showed that printed chondrocytes proliferated sufficiently and differentiated into cartilage tissue. Thus, we conclude that the advanced 3D cell-printing system is a versatile tool to create cell-printed constructs for the generation of large-volume tissues.

摘要

以临床相关尺寸打印的大容量细胞的三维(3D)打印是组织工程领域最重要的挑战之一。然而,很少有研究报道过大容量细胞打印构建体(LCC)的制造。为了制造LCC,应建立合适的制造条件:涉及的因素包括制造时间、停留时间以及注射器中载细胞水凝胶的温度控制,以确保高细胞活力和功能。LCC的3D打印所需的较长时间会降低细胞活力并导致构建体功能不足,因为细胞在打印过程中会暴露于恶劣环境中。在这方面,我们提出了一种先进的3D细胞打印系统,该系统由洁净空气工作站、加湿器和珀耳帖系统组成,可为生产具有高细胞活力的LCC提供合适的打印环境。我们证实,先进的3D细胞打印系统能够提高水凝胶的可打印性,并制造出具有高细胞活力的耳形LCC。耳形LCC的体内结果还表明,打印的软骨细胞充分增殖并分化为软骨组织。因此,我们得出结论,先进的3D细胞打印系统是一种通用工具,可用于创建用于生成大容量组织的细胞打印构建体。

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