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低频磁场预处理对零镁诱导大鼠海马脑片癫痫样放电的影响。

Effect of priming low-frequency magnetic fields on zero-Mg -induced epileptiform discharges in rat hippocampal slices.

机构信息

State Key Laboratory of Precision Measurement Technology and Instruments, Tianjin University, Tianjin 300072, China; Tianjin Key Laboratory of Biomedical Detecting Techniques & Instruments, Tianjin University, Tianjin 300072, China.

School of Information Technology and Electrical Engineering, The University of Queensland, St Lucia, Brisbane, Queensland 4072, Australia.

出版信息

Epilepsy Res. 2020 Nov;167:106464. doi: 10.1016/j.eplepsyres.2020.106464. Epub 2020 Sep 12.

Abstract

During the process of seizures, the addition of low-frequency magnetic fields has been proved to be an effective method to suppress epileptic discharges. However, whether adding magnetic fields before the appearance of epileptic discharges can produce this inhibition has not been studied. In the present study, we first constructed epilepsy models on brain slices by perfusing them with Mg-free artificial cerebrospinal fluid (aCSF). The events of seizures evolved from inter-ictal epileptiform discharges (IIDs) to inter-epileptiform discharges (IDs). Combined with the multi-electrode array platform, we designed a flexible moving coil to generate a 0.5 Hz magnetic field on the brain slices. Using this method, we added the magnetic fields to brain slices for 30 min before epileptiform discharges were induced. The experimental results demonstrated that although the priming magnetic fields could not completely inhibit epileptiform discharges, they can significantly reduce the frequency of IDs and increase the frequency of IIDs in the CA3 region of the hippocampal slices. In the control group, the rates of IDs and IIDs were 0.0024 ± 0.0006 Hz and 0.0138 ± 0.0043 Hz, respectively, while in the magnetic stimulation group, the rates were 0.0012 ± 0.0004 Hz and 0.0251 ± 0.0067 Hz. Moreover, the results indicated that changing the frequency of interictal discharges did not affect ictogenesis. The results demonstrated that the priming magnetic fields had a certain weakening effect on the frequency of IDs, which was achieved by reducing the signal propagation speed and increasing the excitability threshold of hippocampal neurons.

摘要

在癫痫发作过程中,已证明添加低频磁场是抑制癫痫放电的有效方法。然而,在癫痫放电出现之前添加磁场是否能产生这种抑制作用尚未得到研究。在本研究中,我们首先通过用无镁人工脑脊液(aCSF)灌流构建脑片上的癫痫模型。癫痫发作的事件从间棘波样放电(IIDs)演变为间癫痫样放电(IDs)。结合多电极阵列平台,我们设计了一个灵活的动圈,在脑片上产生 0.5 Hz 的磁场。使用这种方法,我们在诱导癫痫样放电之前将磁场施加到脑片上 30 分钟。实验结果表明,尽管起始磁场不能完全抑制癫痫样放电,但它可以显著降低海马切片 CA3 区 IDs 的频率,并增加 IIDs 的频率。在对照组中,IDs 和 IIDs 的频率分别为 0.0024 ± 0.0006 Hz 和 0.0138 ± 0.0043 Hz,而在磁场刺激组中,频率分别为 0.0012 ± 0.0004 Hz 和 0.0251 ± 0.0067 Hz。此外,结果表明,改变间棘波的频率不会影响癫痫发作的发生。结果表明,起始磁场对 IDs 的频率具有一定的减弱作用,这是通过降低信号传播速度和增加海马神经元的兴奋性阈值来实现的。

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