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直流和交流磁场均可促进有无视黄酸情况下SH-SY5Y神经母细胞瘤细胞的神经突生长。

DC and AC magnetic fields increase neurite outgrowth of SH-SY5Y neuroblastoma cells with and without retinoic acid.

作者信息

Mahmood Alabed Enad Abed, Engel Martin, Yamauchi Yusuke, Hossain Md Shahriar A, Ooi Lezanne

机构信息

School of Biological Sciences, Faculty of Science, Medicine and Health, University of Wollongong Northfields Ave Wollongong NSW 2522 Australia

Illawarra Health and Medical Research Institute Northfields Avenue Wollongong NSW 2522 Australia.

出版信息

RSC Adv. 2019 Jun 5;9(31):17717-17725. doi: 10.1039/c9ra02001b. eCollection 2019 Jun 4.

Abstract

It has been suggested that electromagnetic fields could be used to differentiate neurons in culture but how to do this is not clear. We investigated the effect of external magnetic fields (DC and AC MF) on neuronal viability, differentiation, and neurite outgrowth of human SH-SY5Y neuroblastoma cells . A strong low frequency DC MF or a weak AC MF improved retinoic acid-mediated neuronal differentiation and increased neurite length, without any adverse effects on neuronal viability. Even in the absence of the conventional differentiation factor, retinoic acid, DC and AC MF promoted neurite outgrowth. No significant negative effect on cell viability was observed after MF exposure and the DC MF had greater effects on neurite length and branch number than AC MF. Thus, we have identified a novel, simple and cost-effective method that is easy to set up in any cell culture laboratory that can be used to efficiently differentiate neuronal-like cells, using a DC MF without the need for expensive reagents. This research provides a fresh approach to promote neurite outgrowth in a commonly used neuronal-like cell line model and may be applicable to neural stem cells or primary neurons.

摘要

有人提出,电磁场可用于体外培养神经元的分化,但具体如何操作尚不清楚。我们研究了外部磁场(直流和交流磁场)对人SH-SY5Y神经母细胞瘤细胞的神经元活力、分化和神经突生长的影响。强低频直流磁场或弱交流磁场可改善视黄酸介导的神经元分化并增加神经突长度,且对神经元活力无任何不利影响。即使在没有传统分化因子视黄酸的情况下,直流和交流磁场也能促进神经突生长。磁场暴露后未观察到对细胞活力有显著负面影响,且直流磁场对神经突长度和分支数的影响大于交流磁场。因此,我们确定了一种新颖、简单且经济高效的方法,该方法易于在任何细胞培养实验室中建立,可用于高效分化神经元样细胞,使用直流磁场且无需昂贵试剂。本研究为在常用的神经元样细胞系模型中促进神经突生长提供了一种新方法,可能适用于神经干细胞或原代神经元。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/7ff1/9064590/8899d1854909/c9ra02001b-f1.jpg

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