Department of Mechanical and Aerospace Engineering, Seoul National University, Seoul 08826, Republic of Korea.
Lab Chip. 2019 Sep 7;19(17):2822-2833. doi: 10.1039/c9lc00140a. Epub 2019 Jul 30.
The field of microfluidics-based three-dimensional (3D) cell culture system is rapidly progressing from academic proof-of-concept studies to valid solutions to real-world problems. Polydimethylsiloxane (PDMS)-based platform has been widely adopted as in vitro platforms for mimicking tumor microenvironment. However, PDMS has not been welcomed as a standardized commercial application for preclinical screening due to inherent material limitations that make it difficult to scale-up production. Here, we present an injection-molded plastic array 3D spheroid culture platform (Sphero-IMPACT). The platform is made of polystyrene (PS) in a standardized 96-well plate format with a user-friendly interface. This interface describes a simpler design that incorporates a tapered hole in the center of the rail to pattern a large spheroid with 3D extracellular matrix and various cell types. This hole is designed to accommodate standard pipette tip for automated system. The platform that mediate open microfluidics allows implement spontaneous fluid patterning with high repeatability from the end user. To demonstrate versatile use of the platform, we developed 3D perfusable blood vessel network and tumor spheroid assays. In addition, we established a tumor spheroid induced angiogenesis model that can be applicable for drug screening. Sphero-IMPACT has the potential to provide a robust and reproducible in vitro assay related to vascularized cancer research. This easy-to-use, ready-to-use platform can be translated into an enhanced preclinical model that faithfully reflects the complex tumor microenvironment.
基于微流控的三维(3D)细胞培养系统领域正在迅速从学术概念验证研究发展为解决实际问题的有效解决方案。基于聚二甲基硅氧烷(PDMS)的平台已被广泛应用于模拟肿瘤微环境的体外平台。然而,由于 PDMS 存在固有材料限制,难以实现规模化生产,因此尚未被广泛接受作为临床前筛选的标准化商业应用。在这里,我们提出了一种注塑成型塑料阵列 3D 球体培养平台(Sphero-IMPACT)。该平台由聚苯乙烯(PS)制成,采用标准化的 96 孔板格式,具有用户友好的接口。该接口采用了更简单的设计,在轨道中心设计了一个锥形孔,用于对 3D 细胞外基质和各种细胞类型进行大球体图案设计。该孔的设计旨在容纳标准的移液器吸头,以实现自动化系统。该平台介导开放式微流控,允许最终用户实现高重复性的自发流体图案设计。为了展示平台的多功能用途,我们开发了 3D 可灌注血管网络和肿瘤球体分析。此外,我们建立了一种肿瘤球体诱导血管生成模型,可用于药物筛选。Sphero-IMPACT 有可能提供一种与血管化癌症研究相关的强大且可重复的体外分析。这个易于使用、即用型的平台可以转化为一种增强的临床前模型,忠实地反映复杂的肿瘤微环境。