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Nano-topography Enhances Communication in Neural Cells Networks

机译:纳米地形增强了神经细胞网络的通信

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摘要

Neural cells are the smallest building blocks of the central and peripheral nervous systems. Information in neural networks and cell-substrate interactions have been heretofore studied separately. Understanding whether surface nano-topography can direct nerve cells assembly into computational efficient networks may provide new tools and criteria for tissue engineering and regenerative medicine. In this work, we used information theory approaches and functional multi calcium imaging (fMCI) techniques to examine how information flows in neural networks cultured on surfaces with controlled topography. We found that substrate roughness S a affects networks topology. In the low nano-meter range, S a  = 0-30 nm, information increases with S a . Moreover, we found that energy density of a network of cells correlates to the topology of that network. This reinforces the view that information, energy and surface nano-topography are tightly inter-connected and should not be neglected when studying cell-cell interaction in neural tissue repair and regeneration.
机译:神经细胞是中枢和周围神经系统的最小组成部分。迄今为止,已经分别研究了神经网络中的信息和细胞-基质相互作用。了解表面纳米形貌是否可以指导神经细胞组装成计算有效的网络,可能为组织工程和再生医学提供新的工具和标准。在这项工作中,我们使用了信息论方法和功能性多钙成像(fMCI)技术来检查信息在具有受控形貌的表面上培养的神经网络中如何流动。我们发现基板粗糙度S a影响网络拓扑。在低纳米范围内,S a = 0-30 nm,信息随S a增加。此外,我们发现细胞网络的能量密度与该网络的拓扑结构相关。这强化了以下观点:信息,能量和表面纳米形貌紧密相连,在研究神经组织修复和再生中的细胞间相互作用时不应忽略。

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