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一种用于 3D 神经元细胞培养的形态和电生理并行读取的微生理系统。

A microphysiological system for parallelized morphological and electrophysiological read-out of 3D neuronal cell culture.

机构信息

NMI Natural and Medical Sciences Institute at the University of Tübingen, 72770 Reutlingen, Germany.

Department for Microphysiological Systems, Institute of Biomedical Engineering, Eberhard Karls University Tübingen, 72074 Tübingen, Germany.

出版信息

Lab Chip. 2024 Mar 12;24(6):1750-1761. doi: 10.1039/d3lc00963g.

Abstract

Three-dimensional models in microfluidic systems are promising tools for studying cell biology, with complex models using multiple cell types combined with high resolution imaging. Neuronal models demand electrical readout of the activity of networks of single neurons, yet classical planar microelectrode arrays struggle to capture extracellular action potentials when neural soma are suspended distant from the microelectrodes. This study introduces sophisticated microfluidic microelectrode arrays, specifically tailored for electrophysiology of 3D neuronal cultures. Using multilayer photolithography of permanent epoxy photoresists, we developed devices having 12 independent culture modules in a convenient format. Each module has two adjacent compartments for hydrogel-based 3D cell culture, with tunnels allowing projection of neurites between compartments. Microelectrodes integrated in the tunnels record action potentials as they pass between the compartments. Mesh ceilings separate the compartments from overlying wells, allowing for simple cell seeding and later nutrient, gas and waste exchange and application of test substances. Using these devices, we have demonstrated 3D neuronal culture, including electrophysiological recording and live imaging. This microphysiological platform will enable high-throughput investigation of neuronal networks for investigation of neurological disorders, neural pharmacology and basic neuroscience. Further models could include cocultures representing multiple brain regions or innervation models of other organs.

摘要

在微流控系统中,三维模型是研究细胞生物学的有前途的工具,复杂的模型使用多种细胞类型,并结合高分辨率成像。神经元模型需要对单个神经元网络的活动进行电读取,但当神经元体从微电极悬起时,经典的平面微电极阵列很难捕获细胞外动作电位。本研究介绍了专门为 3D 神经元培养设计的复杂微流控微电极阵列。我们使用永久性环氧树脂光刻胶的多层光刻技术,开发了具有 12 个独立培养模块的方便格式的设备。每个模块有两个相邻的隔间,用于基于水凝胶的 3D 细胞培养,隧道允许神经元突之间在隔间之间投射。集成在隧道中的微电极记录动作电位,因为它们在隔间之间传递。网顶将隔间与上面的井隔开,允许简单的细胞接种,以及后期的营养、气体和废物交换以及测试物质的应用。使用这些设备,我们已经展示了 3D 神经元培养,包括电生理记录和实时成像。这个微生理平台将能够高通量研究神经元网络,用于研究神经疾病、神经药理学和基础神经科学。进一步的模型可以包括代表多个脑区的共培养物或其他器官的神经支配模型。

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