Shinha Kenta, Nihei Wataru, Nakamura Hiroko, Goto Tomomi, Kawanishi Takumi, Ishida Naoki, Yamazaki Nao, Imakura Yuki, Mima Shinji, Inamura Kosuke, Arakawa Hiroshi, Nishikawa Masaki, Kato Yukio, Sakai Yasuyuki, Kimura Hiroshi
Department of Mechanical Engineering, School of Engineering, Tokai University, 4-1-1 Kitakaname, Hiratsuka 259-1292, Japan.
Micro/Nano Technology Center, Tokai University, 4-1-1 Kitakaname, Hiratsuka 259-1292, Japan.
Micromachines (Basel). 2021 Aug 24;12(9):1007. doi: 10.3390/mi12091007.
Microphysiological systems (MPSs), including organ-on-a-chip (OoC), have attracted attention as a novel method for estimating the effects and side effects of drugs in drug discovery. To reproduce the dynamic in vivo environment, previous MPSs were connected to pump systems to perfuse culture medium. Therefore, most MPSs are not user-friendly and have poor throughput. We aimed to develop a kinetic pump integrated microfluidic plate (KIM-Plate) by applying the stirrer-based micropump to an open access culture plate to improve the usability of MPSs. The KIM-Plate integrates six multiorgan MPS (MO-MPS) units and meets the ANSI/SBS microplate standards. We evaluated the perfusion function of the kinetic pump and found that the KIM-Plate had sufficient agitation effect. Coculture experiments with PXB cells and hiPS intestinal cells showed that the TEER of hiPS intestinal cells and gene expression levels related to the metabolism of PXB cells were increased. Hence, the KIM-Plate is an innovative tool for the easy coculture of highly conditioned cells that is expected to facilitate cell-based assays in the fields of drug discovery and biology because of its usability and high throughput nature.
微生理系统(MPSs),包括芯片器官(OoC),作为药物发现中评估药物效果和副作用的一种新方法已引起关注。为了重现体内动态环境,以前的MPSs与泵系统相连以灌注培养基。因此,大多数MPSs使用不便捷且通量较低。我们旨在通过将基于搅拌器的微型泵应用于开放式培养板来开发一种集成动力学泵的微流控板(KIM-Plate),以提高MPSs的可用性。KIM-Plate集成了六个多器官MPS(MO-MPS)单元,并符合ANSI/SBS微孔板标准。我们评估了动力学泵的灌注功能,发现KIM-Plate具有足够的搅拌效果。PXB细胞与诱导多能干细胞来源的肠细胞的共培养实验表明,诱导多能干细胞来源的肠细胞的跨上皮电阻以及与PXB细胞代谢相关的基因表达水平均有所提高。因此,KIM-Plate是一种用于高度条件化细胞简易共培养的创新工具,因其易用性和高通量特性,有望在药物发现和生物学领域促进基于细胞的分析。