Kheiri Sina, Chen Zhengkun, Yakavets Ilya, Rakhshani Faeze, Young Edmond W K, Kumacheva Eugenia
Department of Mechanical & Industrial Engineering, University of Toronto, Toronto, Ontario, Canada.
Department of Chemistry, University of Toronto, Toronto, Ontario, Canada.
Biotechnol J. 2023 Oct;18(10):e2200621. doi: 10.1002/biot.202200621. Epub 2023 Jul 21.
Spheroid-on-a-chip platforms are emerging as promising in vitro models that enable screening of the efficacy of biologically active ingredients. Generally, the supply of liquids to spheroids occurs in the steady flow mode with the use of syringe pumps; however, the utilization of tubing and connections, especially for multiplexing and high-throughput screening applications, makes spheroid-on-a-chip platforms labor- and cost-intensive. Gravity-induced flow using rocker platforms overcomes these challenges. Here, a robust gravity-driven technique was developed to culture arrays of cancer cell spheroids and dermal fibroblast spheroids in a high-throughput manner using a rocker platform. The efficiency of the developed rocker-based platform was benchmarked to syringe pumps for generating multicellular spheroids and their use for screening biologically active ingredients. Cell viability, internal spheroid structure as well as the effect of vitamin C on spheroids' protein synthesis was studied. The rocker-based platform not only offers comparable or enhanced performance in terms of cell viability, spheroids formation, and protein production by dermal fibroblast spheroids but also, from a practical perspective, offers a smaller footprint, requires a lower cost, and offers an easier method for handling. These results support the application of rocker-based microfluidic spheroid-on-a-chip platforms for in vitro screening in a high-throughput manner with industrial scaling-up opportunities.
芯片上的球体平台正成为一种很有前景的体外模型,可用于筛选生物活性成分的功效。一般来说,通过使用注射泵以稳定流动模式向球体供应液体;然而,管道和连接件的使用,特别是在多重和高通量筛选应用中,使得芯片上的球体平台耗费人力且成本高昂。利用摇床平台的重力驱动流动克服了这些挑战。在此,开发了一种强大的重力驱动技术,以高通量方式使用摇床平台培养癌细胞球体和真皮成纤维细胞球体阵列。将所开发的基于摇床的平台的效率与注射泵进行基准比较,以生成多细胞球体并将其用于筛选生物活性成分。研究了细胞活力、球体内部结构以及维生素C对球体蛋白质合成的影响。基于摇床的平台不仅在细胞活力、球体形成以及真皮成纤维细胞球体的蛋白质产生方面具有可比或更高的性能,而且从实际角度来看,占地面积更小,成本更低,并且提供了一种更简便的处理方法。这些结果支持基于摇床的微流控芯片上的球体平台在具有工业扩大规模机会的高通量体外筛选中的应用。