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Caged Neuron MEA: A system for long-term investigation of cultured neural network connectivity

机译:笼状神经元MEA:用于长期研究培养的神经网络连通性的系统

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摘要

Traditional techniques for investigating cultured neural networks, such as the patch clamp and multi-electrode array, are limited by: 1) the number of identified cells which can be simultaneously electrically contacted, 2) the length of time for which cells can be studied, and 3) the lack of one-to-one neuron-to-electrode specificity. Here, we present a new device—the caged neuron multi-electrode array—which overcomes these limitations. This micro-machined device consists of an array of neurocages which mechanically trap a neuron near an extracellular electrode. While the cell body is trapped, the axon and dendrites can freely grow into the surrounding area to form a network. The electrode is bi-directional, capable of both stimulating and recording action potentials. This system is non-invasive, so that all constituent neurons of a network can be studied over its lifetime with stable one-to-one neuron-to-electrode correspondence. Proof-of-concept experiments are described to illustrate that functional networks form in a neurochip system of 16 cages in a 4×4 array, and that suprathreshold connectivity can be fully mapped over several weeks. The neurochip opens a new domain in neurobiology for studying small cultured neural networks.
机译:研究培养的神经网络的传统技术(例如膜片钳和多电极阵列)受到以下因素的限制:1)可以同时电接触的已识别细胞数量,2)可研究细胞的时间长度, 3)缺乏一对一的神经元到电极特异性。在这里,我们提出了一种新的设备-笼状神经元多电极阵列-克服了这些限制。这种微加工设备由一系列神经笼组成,这些神经笼将神经元机械地捕获在细胞外电极附近。当细胞被困住时,轴突和树突可以自由地生长到周围区域以形成网络。电极是双向的,能够刺激和记录动作电位。该系统是非侵入性的,因此可以在网络的整个生命周期中以稳定的一对一神经元到电极对应关系研究网络的所有组成神经元。描述概念验证实验以说明功能网络在4×4阵列的16个笼子的神经芯片系统中形成,并且超阈值连接性可以在数周内完全映射。神经芯片为研究小型培养的神经网络打开了神经生物学的新领域。

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