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从二维到三维:用于研究重建神经网络中信号传导的新型纳米结构支架

From 2D to 3D: novel nanostructured scaffolds to investigate signalling in reconstructed neuronal networks.

作者信息

Bosi Susanna, Rauti Rossana, Laishram Jummi, Turco Antonio, Lonardoni Davide, Nieus Thierry, Prato Maurizio, Scaini Denis, Ballerini Laura

机构信息

Department of Chemical and Pharmaceutical Sciences, University of Trieste, Trieste-Italy.

Life Science Department, University of Trieste, Trieste-Italy.

出版信息

Sci Rep. 2015 Apr 24;5:9562. doi: 10.1038/srep09562.

Abstract

To recreate in vitro 3D neuronal circuits will ultimately increase the relevance of results from cultured to whole-brain networks and will promote enabling technologies for neuro-engineering applications. Here we fabricate novel elastomeric scaffolds able to instruct 3D growth of living primary neurons. Such systems allow investigating the emerging activity, in terms of calcium signals, of small clusters of neurons as a function of the interplay between the 2D or 3D architectures and network dynamics. We report the ability of 3D geometry to improve functional organization and synchronization in small neuronal assemblies. We propose a mathematical modelling of network dynamics that supports such a result. Entrapping carbon nanotubes in the scaffolds remarkably boosted synaptic activity, thus allowing for the first time to exploit nanomaterial/cell interfacing in 3D growth support. Our 3D system represents a simple and reliable construct, able to improve the complexity of current tissue culture models.

摘要

在体外重建三维神经元回路最终将提高从培养物到全脑网络的结果的相关性,并将推动神经工程应用的使能技术。在这里,我们制造了能够指导活的原代神经元进行三维生长的新型弹性支架。这样的系统允许研究小神经元簇在钙信号方面的新兴活动,作为二维或三维结构与网络动力学之间相互作用的函数。我们报告了三维几何形状改善小型神经元组件中功能组织和同步的能力。我们提出了支持这一结果的网络动力学数学模型。将碳纳米管包裹在支架中显著增强了突触活动,从而首次在三维生长支持中利用纳米材料/细胞界面。我们的三维系统代表了一种简单可靠的结构,能够提高当前组织培养模型的复杂性。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/7125/5407555/3443a400addb/srep09562-f1.jpg

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