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电刺激与 bFGF 联合促进神经干细胞的神经元分化和突起延伸,构建 3D 工程化神经组织。

Combination of electrical stimulation and bFGF synergistically promote neuronal differentiation of neural stem cells and neurite extension to construct 3D engineered neural tissue.

机构信息

Department of Histology & Embryology, College of Basic Medical Sciences, Jilin University, Changchun 130021, People's Republic of China.

Department of Pathogenic Biology, College of Basic Medical Sciences, Jilin University, Changchun 130021, People's Republic of China.

出版信息

J Neural Eng. 2020 Nov 4;17(5):056048. doi: 10.1088/1741-2552/abaac0.

Abstract

OBJECTIVE

The construction of in vitro three-dimensional (3D) neural tissue has to overcome two main types of challenges: (1) How to obtain enough number of functional neurons from stem cells in 3D culture; (2) How to wire those lately developed neurons into functional neural networks. Here, we describe the potential of using direct current (DC) electric field (EF) together with basic fibroblast growth factor (bFGF) synergistically in promoting neural stem cell (NSC) neuronal differentiation following by directing neurite outgrowth in the 3D neural tissue construction.

APPROACH

By adjusting the electrical stimulation setup in this study, long-term electrical stimulation could be present in vitro. At an EF strength of 150 mV mm, cell responses, including cell viability, neuronal differentiation, cell morphology, the length of neuronal processes, synaptic structure and neural network formation, were quantified and analyzed.

MAIN RESULTS

Analysis revealed that NSCs showed no significant cell death after certain EF treatments. EF-stimulated NSCs in 3D Matrigel mainly differentiated into neurons, but unlike NSCs in two-dimensional conditions, their processes were flat and stunted. When combined with bFGF, EF stimulation provided appropriate bioactive cues to establish engineered neural tissue with a proper neuronal cell number, highly branched neurites, and a well-developed neuronal network.

SIGNIFICANCE

It is for the first time the synergistic effects of EF and bFGF stimulation have been evaluated in inducing the differentiation of NSCs into neurons and the acquisition of long neurites in a culture environment of in vitro 3D model. These optimized conditions may allow a well-developed neuronal network to be established within hydrogel droplets.

摘要

目的

体外构建三维(3D)神经组织需要克服两个主要挑战:(1)如何从 3D 培养的干细胞中获得足够数量的功能性神经元;(2)如何将新发育的神经元连接成功能性神经网络。在这里,我们描述了在促进神经干细胞(NSC)向神经元分化的同时,直接利用直流(DC)电场(EF)与碱性成纤维细胞生长因子(bFGF)协同作用的潜力,从而在 3D 神经组织构建中引导神经突生长。

方法

通过调整本研究中的电刺激设置,可以在体外进行长期电刺激。在 150 mV/mm 的 EF 强度下,对细胞反应(包括细胞活力、神经元分化、细胞形态、神经元突起的长度、突触结构和神经网络形成)进行量化和分析。

主要结果

分析表明,NSC 在经过一定的 EF 处理后没有明显的细胞死亡。3D Matrigel 中的 EF 刺激 NSC 主要分化为神经元,但与二维条件下的 NSC 不同,它们的突起是扁平的和发育不良的。当与 bFGF 结合时,EF 刺激提供了适当的生物活性线索,以建立具有适当神经元数量、高度分支的神经突和发达的神经网络的工程化神经组织。

意义

这是首次评估 EF 和 bFGF 刺激的协同作用,以诱导 NSC 分化为神经元,并在体外 3D 模型的培养环境中获得长神经突。这些优化条件可能允许在水凝胶液滴内建立发达的神经元网络。

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