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Network dynamics of 3D engineered neuronal cultures: a new experimental model for in-vitro electrophysiology

机译:3D工程神经元文化的网络动力学:体外电生理学的新实验模型

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摘要

Despite the extensive use of in-vitro models for neuroscientific investigations and notwithstanding the growing field of network electrophysiology, all studies on cultured cells devoted to elucidate neurophysiological mechanisms and computational properties, are based on 2D neuronal networks. These networks are usually grown onto specific rigid substrates (also with embedded electrodes) and lack of most of the constituents of the in-vivo like environment: cell morphology, cell-to-cell interaction and neuritic outgrowth in all directions. Cells in a brain region develop in a 3D space and interact with a complex multi-cellular environment and extracellular matrix. Under this perspective, 3D networks coupled to micro-transducer arrays, represent a new and powerful in-vitro model capable of better emulating in-vivo physiology. In this work, we present a new experimental paradigm constituted by 3D hippocampal networks coupled to Micro-Electrode-Arrays (MEAs) and we show how the features of the recorded network dynamics differ from the corresponding 2D network model. Further development of the proposed 3D in-vitro model by adding embedded functionalized scaffolds might open new prospects for manipulating, stimulating and recording the neuronal activity to elucidate neurophysiological mechanisms and to design bio-hybrid microsystems.
机译:尽管在神经科学研究中已经广泛使用了体外模型,并且尽管网络电生理学领域的发展不断,但所有致力于阐明神经生理机制和计算特性的培养细胞的研究均基于二维神经元网络。这些网络通常生长在特定的刚性基板(也带有嵌入式电极)上,并且缺乏体内样环境的大部分组成:细胞形态,细胞间相互作用以及神经向各个方向的生长。脑区域中的细胞在3D空间中发育,并与复杂的多细胞环境和细胞外基质相互作用。在这种情况下,耦合到微传感器阵列的3D网络代表了一种能够更好地模拟体内生理学的强大的体外模型。在这项工作中,我们提出了一个由3D海马网络与微电极阵列(MEA)耦合构成的新实验范式,并且我们展示了所记录的网络动力学特征与相应的2D网络模型有何不同。通过添加嵌入式功能化支架对拟议的3D体外模型的进一步开发可能会为操纵,刺激和记录神经元活动阐明神经生理机制和设计生物杂交微系统开辟新的前景。

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