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电场作用下大鼠胚胎海马神经元的轴突生长

Axon Outgrowth of Rat Embryonic Hippocampal Neurons in the Presence of an Electric Field.

作者信息

Kim Kwang-Min, Kim Sung Yeol, Palmore G Tayhas R

机构信息

School of Engineering, ‡Center for Biomedical Engineering, and §Department of Chemistry, Brown University , Providence, Rhode Island 02912, United States.

出版信息

ACS Chem Neurosci. 2016 Oct 19;7(10):1325-1330. doi: 10.1021/acschemneuro.6b00191. Epub 2016 Aug 19.

Abstract

Application of an electric field (EF) has long been used to induce axon outgrowth following nerve injuries. The response of mammalian neurons (e.g., axon length, axon guidance) from the central nervous system (CNS) to an EF, however, remains unclear, whereas those from amphibian or avian neuron models have been well characterized. Thus, to determine an optimal EF for axon outgrowth of mammalian CNS neurons, we applied a wide range of EF to rat hippocampal neurons. Our results showed that EF with either a high magnitude (100 mV/mm or higher) or long exposure time (10 h or longer) with low magnitude (10-30 mV/mm) caused a neurite collapse and cell death. We also investigated whether neuronal response to an EF is altered depending on the growth stage of neuron cultures by applying 30 mV/mm to cells from 1 to 11 days in vitro (DIV). Neurons showed the turnover of axon outgrowth pattern when electrically stimulated between 4-5 DIV at which point neurons have both axonal and dendritic formation. The findings of this study suggest that the developmental stage of neurons is an important factor to consider when using EF as a potential method for axon regeneration in mammalian CNS neurons.

摘要

长期以来,电场(EF)的应用一直被用于诱导神经损伤后轴突的生长。然而,中枢神经系统(CNS)中哺乳动物神经元(如轴突长度、轴突导向)对电场的反应仍不清楚,而两栖动物或鸟类神经元模型的反应已得到充分表征。因此,为了确定哺乳动物中枢神经系统神经元轴突生长的最佳电场,我们对大鼠海马神经元施加了广泛范围的电场。我们的结果表明,高强度(100 mV/mm或更高)或长时间暴露(10小时或更长)且低强度(10 - 30 mV/mm)的电场会导致神经突塌陷和细胞死亡。我们还通过对体外培养1至11天(DIV)的细胞施加30 mV/mm的电场,研究了神经元对电场的反应是否会根据神经元培养的生长阶段而改变。当在4 - 5 DIV之间进行电刺激时,神经元表现出轴突生长模式的转变,此时神经元既有轴突形成也有树突形成。这项研究的结果表明,在将电场用作哺乳动物中枢神经系统神经元轴突再生的潜在方法时,神经元的发育阶段是一个需要考虑的重要因素。

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