Department of Biomedical Engineering, National Taiwan University, Taipei 10617, Taiwan.
Department of Materials Science and Engineering, National Taiwan University of Science and Technology, Taipei 10607, Taiwan.
Int J Mol Sci. 2020 Jun 16;21(12):4298. doi: 10.3390/ijms21124298.
There have been many microfluid technologies combined with hanging-drop for cell culture gotten developed in the past decade. A common problem within these devices is that the cell suspension introduced at the central inlet could cause a number of cells in each microwell to not regularize. Also, the instability of droplets during the spheroid formation remains an unsolved ordeal. In this study, we designed a microfluidic-based hanging-drop culture system with the design of taper-tube that can increase the stability of droplets while enhancing the rate of liquid exchange. A ring is surrounding the taper-tube. The ring can hold the cells to enable us to seed an adequate amount of cells before perfusion. Moreover, during the period of cell culture, the mechanical force around the cell is relatively low to prevent stem cells from differentiate and maintain the phenotype. As a result of our hanging system design, cells are designed to accumulate at the bottom of the droplet. This method enhances convenience for observation activities and analysis of experiments. Thus, this microfluid chip can be used as an in vitro platform representing in vivo physiological conditions, and can be useful in regenerative therapy.
在过去的十年中,已经有许多将微流控技术与悬滴法相结合的用于细胞培养的技术得到了发展。这些设备中一个常见的问题是,在中央入口处引入的细胞悬浮液可能导致每个微井中的许多细胞无法正常化。此外,在球体形成过程中液滴的不稳定性仍然是一个未解决的难题。在本研究中,我们设计了一种基于微流控的悬滴培养系统,采用锥形管设计,可以在提高液滴稳定性的同时提高液体交换率。一个环围绕着锥形管。该环可以固定细胞,以便在灌注前接种足够数量的细胞。此外,在细胞培养期间,细胞周围的机械力相对较低,以防止干细胞分化并保持表型。由于我们的悬滴系统设计,细胞被设计在液滴的底部聚集。这种方法提高了观察活动和实验分析的便利性。因此,这种微流控芯片可用作代表体内生理条件的体外平台,并可用于再生治疗。