Electrical and magnetic stimulation separately modulates the extent and direction of neurite outgrowth in an ionically conductive hydrogel.

Katelyn Neuman, Xiaoyu Zhang, Bryan Schellberg, Laura H Lewis, Abigail Koppes, Ryan Koppes
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Abstract

Objective. The use of conductive materials for aiding peripheral nerve regeneration is a promising method to recapitulate native conductance of nerve tissue and facilitate the delivery of exogeneous stimulation for enhanced recovery. This study systematically investigated the effects of applying electrical (ES) or magnetic stimulation (MS) to neurons within new ionically conductive hydrogels.Approach. The material properties of ionically conductive Gel-Amin hydrogels (Gelatin methacryloyl (GelMA) + Choline acrylate) were compared to those of GelMA hydrogels. Neonatal rat dorsal root ganglia (DRG) were encapsulated in both hydrogel formulations, subjected to ES or MS, and evaluated for differences in neuronal extension. Peripheral glia, Schwann cells (SCs), were subjected to the same stimuli and their secretion of various neurotrophic analytes were investigated.Main results. Gel-Amin hydrogels are 4x more ionically conductive than GelMA hydrogels. The application of electrical stimulation to the encapsulated cells led to a significant decrease (76%) in DRG outgrowth when encapsulated in GelMA versus the Gel-Amin hydrogel. In contrast, MS led to directional neurite extension in a direction perpendicular to the magnetic field gradient.Significance. We present here the first report of a controlled, direct comparison of ES and MS on whole DRG in synthetic materials. The combination of ES and MS decreased total neurite outgrowth but led to more directional growth. Aspects of the material and type of stimuli were noted to reduce several cytokine secretion levels from primary SC cultures. These results highlight the importance of understanding material and biophysical interactions to enhance peripheral nerve regeneration.

电刺激和磁刺激可分别调节离子导电水凝胶中神经元的生长程度和方向。
目的:利用导电材料辅助周围神经再生是一种很有前途的方法,可以再现神经组织的天然电导,并促进外源刺激的传递,以增强恢复。本研究系统地研究了在新型离子导电水凝胶中施加电或磁刺激对神经元的影响。方法:将离子导电凝胶- amin水凝胶(明胶甲基丙烯酰[GelMA] +丙烯酸胆碱)的材料性能与GelMA水凝胶进行了比较。将新生大鼠背根神经节(DRG)包裹在两种水凝胶制剂中,进行电或磁刺激,并评估神经元延伸的差异。外周神经胶质,雪旺细胞(SCs)受到相同的刺激,并研究其分泌各种神经营养分析物的情况。主要结果:凝胶- amin水凝胶的离子导电性是GelMA水凝胶的4倍。与凝胶- amin水凝胶相比,电刺激包被的细胞导致凝胶ma包被的DRG生长显著减少(76%)。相反,磁刺激导致神经突向垂直于磁场梯度的方向延伸。意义:我们在这里首次报道了对合成材料中整个DRG进行可控、直接比较的电刺激和磁刺激。电刺激和磁刺激的结合减少了神经突的总生长,但导致了更多的定向生长。刺激的材料和类型的方面被注意到,从原代SC培养中降低了几种细胞因子的分泌水平。这些结果强调了理解材料和生物物理相互作用对增强周围神经再生的重要性。& # xD。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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