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Graphene-based neuron encapsulation with controlled axonal outgrowth

机译:石墨烯神经元封装与控制轴突的产物

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摘要

Neuronal constructs with tuneable 3D geometry can contribute greatly to the construction of brain-like functional tissues for transplantable grafts and robust experimental models. In this study, we propose a self-folding graphene/polymer bilayer film that forms a micro-roll for neuron encapsulation, and highlight the importance of employing pores on the micro-roll to allow neurons to interact with their surroundings. The micro-patterns and varied thicknesses of the bilayer provide control over the 3D geometries of the micro-roll. The pores facilitate the diffusion of reagents, resulting in the adequate loading of probes for imaging and the successful stimulation of the encapsulated neurons. Moreover, the encapsulated neurons inside the micro-roll are functionally integrated into surrounding neuronal networks by extending their axons through the pores. Thus, our method for encapsulating neurons with a porous graphene-laden film allows the construction of precisely shaped neuronal tissues that interact with their surroundings. We believe that the method will open a new avenue for the reconstruction of functional neuronal tissues and is potentially applicable to other self-folding bilayers.
机译:神经元的结构与可协调的3 d几何为建设贡献很大类人脑功能为可移植的组织移植和健壮的实验模型。研究中,我们提出一个自折叠式石墨烯/聚合物双分子层膜组成一个micro-roll神经元封装和突出的重要性micro-roll允许使用毛孔神经细胞与周围环境进行交互。和不同厚度的小格子双分子层提供控制的3 d几何图形micro-roll。试剂的扩散,导致足够了加载探针成像和成功封装的刺激神经元。此外,封装内的神经元micro-roll功能集成到通过扩展他们的周围神经网络轴突通过毛孔。封装用多孔神经元graphene-laden电影允许的建设精确的神经组织交互与他们的环境。方法将打开一个新途径重建功能性神经组织可能适用于其他自折叠式吗影响。

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