ACS Appl Mater Interfaces. 2018 May 2;10(17):15207-15215. doi: 10.1021/acsami.8b00387. Epub 2018 Apr 17.
A controlled geometry of in vitro neuronal networks allows investigation of the cellular mechanisms that underlie neuron-to-neuron and neuron-extracellular matrix interactions, which are essential to biomedical research. Herein, we report a selective guidance of primary hippocampal neurons by using arrays of three-dimensional vertical nanopillars (NPs) functionalized with a specific adhesion-promoting molecule-poly-dl-ornithine (PDLO). We show that 90% of neuronal cells are guided exclusively on the combinatorial PDLO/NP substrate. Moreover, we demonstrate the influence of the interplay between nanostructures and neurons on synapse formation and maturation, resulting in increased expression of postsynaptic density-95 protein and enhanced network cellular activity conferred by the endogenous c-fos expression. Successful guidance to foster synapse stability and cellular activity on multilevel cues of surface topography and chemical functionalization suggests the potential to devise technologies to control neuronal growth on nanostructures for tissue engineering, neuroprostheses, and drug development.
体外神经元网络的可控几何形状允许研究神经元之间以及神经元与细胞外基质之间相互作用的细胞机制,这对于生物医学研究至关重要。在此,我们通过使用具有特定促进黏附分子多聚-dl-鸟氨酸 (PDLO) 的三维垂直纳米柱 (NP) 阵列报告了对原代海马神经元的选择性引导。我们表明,90%的神经元细胞仅在组合的 PDLO/NP 基底上被引导。此外,我们展示了纳米结构与神经元之间相互作用对突触形成和成熟的影响,导致突触后密度蛋白-95 的表达增加,以及内源性 c-fos 表达赋予的网络细胞活性增强。通过表面形貌和化学功能化的多层次线索成功引导以促进突触稳定性和细胞活性表明,有潜力设计技术来控制纳米结构上的神经元生长,用于组织工程、神经假体和药物开发。