首页> 外文期刊>Brain research >Directed neurite growth of rat dorsal root ganglion neurons and increased colocalization with Schwann cells on aligned poly (methyl methacrylate) electrospun nanofibers
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Directed neurite growth of rat dorsal root ganglion neurons and increased colocalization with Schwann cells on aligned poly (methyl methacrylate) electrospun nanofibers

机译:在对齐的聚(甲基丙烯酸甲酯)电纺纳米纤维上指导大鼠背根神经节神经元的神经突生长并增加与施旺细胞的共定位

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Electrospun nanofibers are promising scaffolds for peripheral and central nervous system repair. The aim of this study was to examine the details of neurite growth of rat dorsal root ganglion neurons (DRGn) on randomly oriented and aligned poly(methyl methacrylate) (PMMA) nanofibers and the relationship between neurites and nanofibers on each substrate. Our substrate design involved electrospinning PMMA nanofibers directly onto bare glass coverslips with acceptable biocompatibility. We cocultured DRGn and Schwann cells on PMMA nanofibers and evaluated their response to each substrate. Compared with neurons cultured on PMMA film and randomly oriented nanofibers, DRGn on aligned PMMA nanofibers formed longer, parallel neurites in accordance with the orientation of the substrate nanofibers, although the average neurite number did not differ among the three groups. Regarding the relationship between neurites and nanofibers, the neurites of DRGn were in close contact with the substrate nanofibers, and the neurites seemed to follow aligned nanofibers more than randomly oriented nanofibers. Coculturing DRGn and Schwann cells on PMMA nanofibers revealed that on aligned nanofibers, neurites and Schwann cells had a higher chance of colocalization than on randomly oriented nanofibers or film; this colocalization may be beneficial during the process of myelination that follows. The results of this study enhance our understanding of the ability of aligned electrospun nanofibers to provide contact guidance to neural cells and strengthen the rationale for future in vivo studies.
机译:电纺纳米纤维是有前景的用于外周和中枢神经系统修复的支架。这项研究的目的是检查大鼠背根神经节神经元(DRGn)在随机取向和对齐的聚甲基丙烯酸甲酯(PMMA)纳米纤维上神经突生长的细节以及每个基底上神经突与纳米纤维之间的关系。我们的基材设计涉及将PMMA纳米纤维直接静电纺丝到具有可接受生物相容性的裸玻璃盖玻片上。我们在PMMA纳米纤维上共培养了DRGn和Schwann细胞,并评估了它们对每种底物的反应。与在PMMA薄膜和随机取向的纳米纤维上培养的神经元相比,在对齐的PMMA纳米纤维上的DRGn会根据基质纳米纤维的取向形成更长的平行神经突,尽管三组中的平均神经突数没有差异。关于神经突和纳米纤维之间的关系,DRGn的神经突与基底纳米纤维紧密接触,并且神经突似乎比无规取向的纳米纤维遵循排列的纳米纤维。在PMMA纳米纤维上共培养DRGn和Schwann细胞表明,在排列的纳米纤维上,神经突和Schwann细胞比在随机取向的纳米纤维或薄膜上具有更高的共定位机会。在随后的髓鞘形成过程中,这种共定位可能是有益的。这项研究的结果增强了我们对对齐的电纺纳米纤维为神经细胞提供接触指导的能力的理解,并增强了未来体内研究的原理。

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