球体
微流控
活力测定
细胞
生物医学工程
细胞培养
三维细胞培养
癌细胞
乳酸脱氢酶
荧光显微镜
纳米技术
化学
材料科学
癌症
体外
生物
医学
荧光
生物化学
酶
遗传学
物理
量子力学
作者
M. Ibrahim Khot,Mark A. Levenstein,Gregory de Boer,Gemma Armstrong,Thomas Maisey,Hafdis S. Svavarsdottir,Helen Andrew,Sarah Perry,Nikil Kapur,David Jayne
标识
DOI:10.1038/s41598-020-72952-1
摘要
Abstract Three-dimensional (3D) spheroidal cell cultures are now recognised as better models of cancers as compared to traditional cell cultures. However, established 3D cell culturing protocols and techniques are time-consuming, manually laborious and often expensive due to the excessive consumption of reagents. Microfluidics allows for traditional laboratory-based biological experiments to be scaled down into miniature custom fabricated devices, where cost-effective experiments can be performed through the manipulation and flow of small volumes of fluid. In this study, we characterise a 3D cell culturing microfluidic device fabricated from a 3D printed master. HT29 cells were seeded into the device and 3D spheroids were generated and cultured through the perfusion of cell media. Spheroids were treated with 5-Fluorouracil for five days through continuous perfusion and cell viability was analysed on-chip at different time points using fluorescence microscopy and Lactate dehydrogenase (LDH) assay on the supernatant. Increasing cell death was observed in the HT29 spheroids over the five-day period. The 3D cell culturing microfluidic device described in this study, permits on-chip anti-cancer treatment and viability analysis, and forms the basis of an effective platform for the high-throughput screening of anti-cancer drugs in 3D tumour spheroids.
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