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纳米纤维支架的拓扑结构对工程化神经组织功能的影响。

Influence of topography of nanofibrous scaffolds on functionality of engineered neural tissue.

作者信息

Hajiali H, Contestabile A, Mele E, Athanassiou A

机构信息

Smart Materials, Istituto Italiano di Tecnologia, via Morego 30, 16163 Genoa, Italy.

出版信息

J Mater Chem B. 2018 Feb 14;6(6):930-939. doi: 10.1039/c7tb02969a. Epub 2018 Jan 24.

Abstract

Properly engineered scaffolds combined with functional neurons can be instrumental for the effective repair of the neural tissue. In particular, it is essential to investigate how three-dimensional (3D) systems and topographical features can impact on neuronal activity to obtain engineered functional neural tissues. In this study, polyphenylene sulfone (PPSu) scaffolds constituted by randomly distributed or aligned electrospun nanofibers were fabricated to evaluate the neural activity in 3D culture environments for the first time. The obtained results demonstrated that the nanofibers can successfully support the adhesion and growth of neural stem cells (NSCs) and enhance neuronal differentiation compared to 2D substrates. In addition, NSCs could spread and migrate along the aligned fibers. The percentage of active NSC-derived neurons and the overall network activity in the fibrous substrates were also remarkably enhanced. Finally, the data of neuronal activity showed not only that the neurons cultured on the nanofibers are part of a functional network, but also that their activity increases, and the direction of neural signals can be controlled in the aligned 3D scaffolds.

摘要

经过适当设计的支架与功能性神经元相结合,有助于神经组织的有效修复。特别是,研究三维(3D)系统和拓扑特征如何影响神经元活动以获得工程化功能性神经组织至关重要。在本研究中,首次制备了由随机分布或排列的电纺纳米纤维构成的聚亚苯基砜(PPSu)支架,以评估3D培养环境中的神经活动。所得结果表明,与二维基质相比,纳米纤维能够成功支持神经干细胞(NSCs)的黏附与生长,并增强神经元分化。此外,神经干细胞能够沿着排列的纤维扩散和迁移。纤维基质中活性神经干细胞衍生神经元的百分比以及整体网络活动也显著增强。最后,神经元活动数据不仅表明在纳米纤维上培养的神经元是功能网络的一部分,而且其活动增强,并且在排列的3D支架中神经信号的方向可以得到控制。

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