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Extremely High Frequency Electromagnetic Fields Facilitate Electrical Signal Propagation by Increasing Transmembrane Potassium Efflux in an Artificial Axon Model

机译:极高频电磁场通过在人工轴突模型中增加跨膜钾流出促进电信号的传播

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摘要

Among the many biological effects caused by low intensity extremely high frequency electromagnetic fields (EHF-EMF) reported in the literature, those on the nervous system are a promising area for further research. The mechanisms by which these fields alter neural activity are still unclear and thus far there appears to be no frequency dependence regarding neuronal responses. Therefore, proper in vitro models for preliminary screening studies of the interaction between neural cells with EMF are needed. We designed an artificial axon model consisting of a series of parallel RC networks. Each RC network contained an aqueous solution of lipid vesicles with a gradient of potassium (K+) concentration as the functional element. We investigated the effects of EHF-EMF (53.37 GHz–39 mW) on the propagation of the electric impulse. We report that exposure to the EHF-EMF increases the amplitude of electrical signal by inducing a potassium efflux from lipid vesicles. Further, exposure to the EHF-EMF potentiates the action of valinomycin – a K+ carrier – increasing the extent of K+ transport across the lipid membrane. We conclude that exposure to the EHF-EMF facilitates the electrical signal propagation by increasing transmembrane potassium efflux, and that the model presented is promising for future screening studies of different EMF frequency spectrum bands.
机译:在文献中报道的由低强度超高频电磁场(EHF-EMF)引起的许多生物学效应中,对神经系统的生物学效应是有待进一步研究的领域。这些字段改变神经活动的机制仍不清楚,到目前为止,似乎对神经元反应没有频率依赖性。因此,需要适当的体外模型进行神经细胞与EMF之间相互作用的初步筛选研究。我们设计了一个由一系列并行RC网络组成的人工轴突模型。每个RC网络都包含脂质囊泡的水溶液,其中钾(K + )浓度梯度作为功能元素。我们研究了EHF-EMF(53.37 GHz–39 mW)对电脉冲传播的影响。我们报告说,暴露于EHF-EMF会通过诱导脂质小泡中的钾流出而增加电信号的幅度。此外,暴露于EHF-EMF会增强缬氨霉素(一种K + 载体)的作用,从而增加了跨脂质膜的K + 转运的程度。我们得出的结论是,暴露于EHF-EMF可以通过增加跨膜钾外排量来促进电信号的传播,并且所提出的模型对于未来对不同EMF频谱带的筛选研究很有希望。

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