Cho Chin-Yi, Chiang Tzu-Hsiang, Hsieh Li-Hung, Yang Wen-Yu, Hsu Hsiang-Hao, Yeh Chih-Kuang, Huang Chieh-Cheng, Huang Jen-Huang
Department of Chemical Engineering, National Tsing Hua University, Hsinchu, Taiwan.
Institute of Biomedical Engineering, National Tsing Hua University, Hsinchu, Taiwan.
Front Cell Dev Biol. 2020 May 7;8:327. doi: 10.3389/fcell.2020.00327. eCollection 2020.
Conventional biomedical research is mostly performed by utilizing a two-dimensional monolayer culture, which fails to recapitulate the three-dimensional (3D) organization and microenvironment of native tissues. To overcome this limitation, several methods are developed to fabricate microtissues with the desired 3D microenvironment. However, they tend to be time-consuming, labor-intensive, or costly, thus hindering the application of 3D microtissues as models in a wide variety of research fields. In the present study, we have developed a pressure-assisted network for droplet accumulation (PANDA) system, an easy-to-use chip that comprises a multichannel fluidic system and a hanging drop cell culture module for uniform 3D microtissue formation. This system can control the desired artificial niches for modulating the fate of the stem cells to form the different sizes of microtissue by adjusting the seeding density. Furthermore, a large number of highly consistent 3D glomerulus-like heterogeneous microtissues that are composed of kidney glomerular podocytes and mesenchymal stem cells have been formed successfully. These data suggest that the developed PANDA system can be employed as a rapid and economical platform to fabricate microtissues with tunable 3D microenvironment and cellular heterogeneity, thus can be employed as tissue-mimicking models in various biomedical research.
传统的生物医学研究大多通过二维单层培养来进行,这种培养方式无法重现天然组织的三维(3D)结构和微环境。为了克服这一局限性,人们开发了几种方法来制造具有所需3D微环境的微组织。然而,这些方法往往耗时、费力或成本高昂,从而阻碍了3D微组织作为模型在各种研究领域的应用。在本研究中,我们开发了一种用于液滴堆积的压力辅助网络(PANDA)系统,这是一种易于使用的芯片,它包括一个多通道流体系统和一个用于均匀形成3D微组织的悬滴细胞培养模块。该系统可以通过调节接种密度来控制所需的人工微环境,以调节干细胞的命运,从而形成不同大小的微组织。此外,已经成功形成了大量由肾小球足细胞和间充质干细胞组成的高度一致的3D肾小球样异质微组织。这些数据表明,所开发的PANDA系统可以作为一个快速且经济的平台,用于制造具有可调3D微环境和细胞异质性的微组织,因此可以在各种生物医学研究中用作组织模拟模型。