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Single-neuronal cell culture and monitoring platform using a fully transparent microfluidic DEP device

机译:使用完全透明的微流体DEP设备的单神经元细胞培养和监测平台

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摘要

Dielectrophoresis using multi-electrode arrays allows a non-invasive interface with biological cells for long-term monitoring of electrophysiological parameters as well as a label-free and non-destructive technique for neuronal cell manipulation. However, experiments for neuronal cell manipulation utilizing dielectrophoresis have been constrained because dielectrophoresis devices generally function outside of the controlled environment (i.e. incubator) during the cell manipulation process, which is problematic because neurons are highly susceptible to the properties of the physiochemical environment. Furthermore, the conventional multi-electrode arrays designed to generate dielectrophoretic force are often fabricated with non-transparent materials that confound live-cell imaging. Here we present an advanced single-neuronal cell culture and monitoring platform using a fully transparent microfluidic dielectrophoresis device for the unabated monitoring of neuronal cell development and function. The device is mounted inside a sealed incubation chamber to ensure improved homeostatic conditions and reduced contamination risk. Consequently, we successfully trap and culture single neurons on a desired location and monitor their growth process over a week. The proposed single-neuronal cell culture and monitoring platform not only has significant potential to realize an in vitro ordered neuronal network, but also offers a useful tool for a wide range of neurological research and electrophysiological studies of neuronal networks.
机译:使用多电极阵列的介电泳允许与生物细胞进行非侵入性接口,以长期监测电生理参数,以及用于神经元细胞操作的无标记和非破坏性技术。但是,利用介电电泳进行神经元细胞操作的实验受到了限制,因为介电电泳装置通常在细胞操作过程中在受控环境(即培养箱)外部起作用,这是有问题的,因为神经元对物理化学环境的特性高度敏感。此外,设计用于产生介电泳力的常规多电极阵列通常是用混淆活细胞成像的非透明材料制造的。在这里,我们介绍了一个先进的单神经元细胞培养和监测平台,该平台使用完全透明的微流介电电泳设备对神经元细胞的发育和功能进行了不懈的监测。该设备安装在密封的培养室内,以确保改善的稳态条件并降低污染风险。因此,我们成功地将单个神经元捕获并培养到所需位置,并在一周内监控它们的生长过程。提出的单神经元细胞培养和监测平台不仅具有实现体外有序神经元网络的巨大潜力,而且为神经元网络的广泛神经学研究和电生理研究提供了有用的工具。

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