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通过可逆键合的微生物反应器和 MEA 基底集成,对长期原代神经元培养物和网络活动进行验证。

Validation of long-term primary neuronal cultures and network activity through the integration of reversibly bonded microbioreactors and MEA substrates.

机构信息

Politecnico di Milano, Bioengineering Department, Piazza Leonardo da Vinci 32, 20133 Milano, Italy.

出版信息

Biotechnol Bioeng. 2012 Jan;109(1):166-75. doi: 10.1002/bit.23310. Epub 2011 Aug 31.

DOI:10.1002/bit.23310
PMID:21858786
Abstract

In vitro recording of neuronal electrical activity is a widely used technique to understand brain functions and to study the effect of drugs on the central nervous system. The integration of microfluidic devices with microelectrode arrays (MEAs) enables the recording of networks activity in a controlled microenvironment. In this work, an integrated microfluidic system for neuronal cultures was developed, reversibly coupling a PDMS microfluidic device with a commercial flat MEA through magnetic forces. Neurons from mouse embryos were cultured in a 100 µm channel and their activity was followed up to 18 days in vitro. The maturation of the networks and their morphological and functional characteristics were comparable with those of networks cultured in macro-environments and described in literature. In this work, we successfully demonstrated the ability of long-term culturing of primary neuronal cells in a reversible bonded microfluidic device (based on magnetism) that will be fundamental for neuropharmacological studies.

摘要

体外记录神经元电活动是一种广泛应用的技术,用于了解大脑功能和研究药物对中枢神经系统的影响。微流控器件与微电极阵列(MEA)的集成可在受控的微环境中记录网络活动。在这项工作中,开发了一种用于神经元培养的集成微流控系统,通过磁力可逆地将 PDMS 微流控器件与商用平面 MEA 耦合。来自小鼠胚胎的神经元在 100 µm 通道中培养,并在体外培养 18 天。网络的成熟及其形态和功能特征与在宏观环境中培养的网络以及文献中描述的网络相当。在这项工作中,我们成功地证明了在基于磁力的可重复结合微流控设备中对原代神经元细胞进行长期培养的能力,这对于神经药理学研究至关重要。

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