Department of Electrical and Computer Engineering, Colorado State University, Fort Collins, CO, USA.
Department of Biomedical Sciences, Colorado State University, Fort Collins, CO, USA.
Biosens Bioelectron. 2024 Nov 1;263:116595. doi: 10.1016/j.bios.2024.116595. Epub 2024 Jul 31.
Well plates are widely used in biological experiments, particularly in pharmaceutical sciences and cell biology. Its popularity stems from its versatility to support a variety of fluorescent markers for high throughput monitoring of cellular activities. However, using fluorescent markers in traditional well plates has its own challenges, namely, they can be potentially toxic to cells, and thus, may perturb their biological functions; and it is difficult to monitor multiple analytes concurrently and in real-time inside each well. This paper presents a fully instrumented microphysiological system with integrated sensors (IMSIS) with a similar well format. Each well in the microphysiological system has a set of sensors for monitoring multiple metabolic analytes in real-time. The IMSIS platform is supported by integrated bioelectronic circuits and a graphical user interface for easy user configuration and monitoring. The system has integrated microfluidics to maintain its microphysiological environment within each well. The IMSIS platform currently incorporates O, HO, and pH sensors inside each well, allowing up to six wells to perform concurrent measurements in real-time. Furthermore, the architecture is scalable to achieve an even higher level of throughput. The miniaturized design ensures portability, suitable for small offices and field applications. The IMSIS platform was successfully used to monitor in real-time the mitochondrial functions of live bovine embryos in O consumption, HO release as an indication of ROS production, and extracellular acidity changes before and after the introduction of external substrates.
微孔生理系统(IMSIS)具有类似的孔板格式,配备了集成传感器,在生物实验中得到了广泛应用,特别是在药物科学和细胞生物学领域。它的普及源于其多功能性,能够支持多种荧光标记物,实现高通量监测细胞活动。然而,在传统的微孔板中使用荧光标记物也存在一些挑战,例如它们可能对细胞有毒性,从而干扰其生物学功能;并且难以在每个孔中同时实时监测多个分析物。本文介绍了一种带有集成传感器的全仪器化微生理系统(IMSIS),每个微孔都有一组传感器,可实时监测多个代谢分析物。IMSIS 平台由集成的生物电子电路和图形用户界面支持,方便用户进行配置和监测。系统还集成了微流控技术,以维持每个孔内的微生理环境。目前,该系统在每个孔内都集成了 O、HO 和 pH 传感器,最多可同时进行六个孔的实时测量。此外,该架构还具有可扩展性,可以实现更高的吞吐量。该系统的小型化设计确保了其便携性,适用于小型办公室和现场应用。该平台成功地用于实时监测活牛胚胎的线粒体功能,包括 O 消耗、HO 释放(作为 ROS 产生的指标)以及外部底物引入前后细胞外酸度的变化。