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用于体外培养神经网络的具有流体灌注的主动式3D微支架系统。

Active 3-D microscaffold system with fluid perfusion for culturing in vitro neuronal networks.

作者信息

Rowe Laura, Almasri Mahmoud, Lee Kil, Fogleman Nick, Brewer Gregory J, Nam Yoonkey, Wheeler Bruce C, Vukasinovic Jelena, Glezer Ari, Frazier A Bruno

机构信息

School of Electrical and Computer Engineering, Georgia Institute of Technology, 791 Atlantic Drive, Atlanta, GA 30332, USA.

出版信息

Lab Chip. 2007 Apr;7(4):475-82. doi: 10.1039/b700795g. Epub 2007 Mar 1.

Abstract

This work demonstrated the design, fabrication, packaging, and characterization of an active microscaffold system with fluid perfusion/nutrient delivery functionalities for culturing in vitro neuronal networks from dissociated hippocampal rat pup neurons. The active microscaffold consisted of an 8 x 8 array of hollow, microfabricated, SU-8 towers (1.0 mm or 1.5 mm in height), with integrated, horizontal, SU-8 cross-members that connect adjacent towers, thus forming a 3-D grid that is conducive to branching, growth, and increased network formation of dissociated hippocampal neurons. Each microtower in the microscaffold system contained a hollow channel and multiple fluid ports for media delivery and perfusion of nutrients to the in vitro neuronal network growing within the microscaffold system. Additionally, there were two exposed Au electrodes on the outer wall of each microtower at varying heights (with insulated leads running within the microtower walls), which will later allow for integration of electrical stimulation/recording functionalities into the active microscaffold system. However, characterization of the stimulation/recording electrodes was not included in the scope of this paper. Design, fabrication, fluid packaging, and characterization of the active microscaffold system were performed. Furthermore, use of the active microscaffold system was demonstrated by culturing primary hippocampal embryonic rat pup neurons, and characterizing cell viability within the microscaffold system.

摘要

这项工作展示了一种具有流体灌注/营养物输送功能的活性微支架系统的设计、制造、封装和特性表征,该系统用于培养来自新生大鼠海马神经元的体外神经网络。活性微支架由一个8×8阵列的中空、微加工的SU-8塔(高度为1.0毫米或1.5毫米)组成,带有集成的水平SU-8横梁,连接相邻的塔,从而形成一个三维网格,有利于分离的海马神经元的分支、生长和增加网络形成。微支架系统中的每个微塔都包含一个中空通道和多个流体端口,用于向在微支架系统内生长的体外神经网络输送培养基和灌注营养物。此外,每个微塔的外壁上有两个不同高度的暴露金电极(绝缘导线在微塔壁内运行),这将允许随后将电刺激/记录功能集成到活性微支架系统中。然而,刺激/记录电极的特性表征不包括在本文范围内。进行了活性微支架系统的设计、制造、流体封装和特性表征。此外,通过培养原代海马胚胎大鼠幼崽神经元并表征微支架系统内的细胞活力,展示了活性微支架系统的用途。

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