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表面涂层作为体外工程神经网络结构的关键参数。

Surface coating as a key parameter in engineering neuronal network structures in vitro.

机构信息

CAS Key Lab for Biological Effects of Nanomaterials and Nanosafety, National Center for NanoScience and Technology, Beijing, 100190, People's Republic of China.

出版信息

Biointerphases. 2012 Dec;7(1-4):29. doi: 10.1007/s13758-012-0029-7. Epub 2012 Apr 24.

Abstract

By quantitatively comparing a variety of macromolecular surface coating agents, we discovered that surface coating strongly modulates the adhesion and morphogenesis of primary hippocampal neurons and serves as a switch of somata clustering and neurite fasciculation in vitro. The kinetics of neuronal adhesion on poly-lysine-coated surfaces is much faster than that on laminin and Matrigel-coated surfaces, and the distribution of adhesion is more homogenous on poly-lysine. Matrigel and laminin, on the other hand, facilitate neuritogenesis more than poly-lysine does. Eventually, on Matrigel-coated surfaces of self-assembled monolayers, neurons tend to undergo somata clustering and neurite fasciculation. By replacing coating proteins with cerebral astrocytes, and patterning neurons on astrocytes through self-assembled monolayers, microfluidics and micro-contact printing, we found that astrocyte promotes soma adhesion and astrocyte processes guide neurites. There, astrocytes could be a versatile substrate in engineering neuronal networks in vitro. Besides, quantitative measurements of cellular responses on various coatings would be valuable information for the neurobiology community in the choice of the most appropriate coating strategy.

摘要

通过定量比较各种高分子表面涂层剂,我们发现表面涂层强烈调节原代海马神经元的黏附和形态发生,并作为体外细胞体聚集和轴突聚集的开关。多聚赖氨酸涂层表面上神经元黏附的动力学比层粘连蛋白和 Matrigel 涂层表面上的快得多,并且多聚赖氨酸上的黏附分布更加均匀。另一方面,Matrigel 和层粘连蛋白比多聚赖氨酸更有利于神经突发生。最终,在自组装单层的 Matrigel 涂层表面上,神经元倾向于发生细胞体聚集和轴突聚集。通过用大脑星形胶质细胞代替涂层蛋白,并通过自组装单层、微流控和微接触印刷对神经元进行图案化,我们发现星形胶质细胞促进细胞体黏附,星形胶质细胞突起引导轴突。在那里,星形胶质细胞可以成为体外工程神经元网络的通用基质。此外,对各种涂层的细胞反应的定量测量将为神经生物学界在选择最合适的涂层策略方面提供有价值的信息。

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