Raut Bibek, Chen Li-Jiun, Hori Takeshi, Kaji Hirokazu
Department of Finemechanics, Graduate School of Engineering, Tohoku University, 6-6-01 Aramaki, Aoba-ku, Sendai 980-8579, Japan.
Department of Biomedical Engineering, Graduate School of Biomedical Engineering, Tohoku University, 6-6-01 Aramaki, Aoba-ku, Sendai 980-8579, Japan.
Micromachines (Basel). 2021 Mar 8;12(3):282. doi: 10.3390/mi12030282.
This study provides design of a low-cost and open source add-on device that enhances the functionality of the popular EVOM instrument for transepithelial/endothelial electrical resistance (TEER) measurement. The original EVOM instrument is designed for measuring TEER in transwell samples manually using a pair of Ag/AgCl electrodes. The inconsistency in electrode placement, temperature variation, and a typically large (12-24 h) time interval between measurements result in large data variabilities. Thus, to solve the current limitation of the EVOM instrument, we built an add-on device using a custom designed electronic board and a 3D printed electrode holder that allowed automated TEER measurements in multiple transwell samples. To demonstrate the functionality of the device prototype, we monitored TEER in 4 transwell samples containing retinal cells (ARPE-19) for 67 h. Furthermore, by monitoring temperature of the cell culture medium, we were able to detect fluctuations in TEER due to temperature change after the medium change process, and were able to correct the data offset. Although we demonstrated the use of our add-on device on EVOM instrument only, the concept (multiplexing using digitally controlled relays) and hardware (custom data logger) presented here can be applied to more advanced TEER instruments to improve the performance of those devices.
本研究提供了一种低成本、开源的附加装置的设计,该装置增强了用于跨上皮/内皮电阻(TEER)测量的流行EVOM仪器的功能。原始的EVOM仪器设计用于使用一对Ag/AgCl电极手动测量Transwell样品中的TEER。电极放置的不一致、温度变化以及测量之间通常较大的(12 - 24小时)时间间隔导致数据差异很大。因此,为了解决EVOM仪器当前的局限性,我们使用定制设计的电子板和3D打印的电极支架构建了一个附加装置,该装置允许在多个Transwell样品中进行自动TEER测量。为了展示该设备原型的功能,我们在含有视网膜细胞(ARPE - 19)的4个Transwell样品中监测TEER长达67小时。此外,通过监测细胞培养基的温度,我们能够检测到培养基更换过程后由于温度变化引起的TEER波动,并能够校正数据偏移。虽然我们仅展示了我们的附加装置在EVOM仪器上的使用,但这里介绍的概念(使用数字控制继电器进行多路复用)和硬件(定制数据记录器)可应用于更先进的TEER仪器,以提高这些设备的性能。