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探索低频磁场对幼年大鼠海马癫痫样放电的抑制作用。

Exploring the Inhibitory Effect of Low-frequency Magnetic Fields on Epileptiform Discharges in Juvenile Rat Hippocampus.

作者信息

Dong Lei, Li Gang, Gao Yang, Lin Ling, Cao Xue-Bin, Zheng Yu

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

Neuroscience. 2021 Jul 15;467:1-15. doi: 10.1016/j.neuroscience.2021.05.016. Epub 2021 May 24.

Abstract

Stimulation with a low frequency electromagnetic field (LF-EMF) has proven to represent a powerful method for the suppression of seizures, as demonstrated in select clinical and laboratory studies. However, the mechanism by which LF-EMF suppresses seizures remains unclear. The purpose of the present study was to explore the modulatory effect of LF-EMF on epileptiform discharges (EDs) using rat hippocampal slices and investigate the underlying mechanisms that mediate these effects. EDs in hippocampal slices was induced by magnesium-free (zero-Mg) artificial cerebrospinal fluid (ACSF) and recorded using an in vitro micro-electrode array (MEA). A small sub-decimeter coil was designed and incorporated in a flexible magnetic stimulation device that allowed electromagnetic fields with different parameters to be delivered to slices. After a stable ED event was recorded, magnetic fields of 0.5 Hz (30 min) with a magnetic intensity of 0.13 mT (5 V voltage input) and 0.25 mT (20 V voltage input) were applied. The results indicated that a high-amplitude 0.5 Hz magnetic field could lead to persistent suppression of ictal discharges (IDs), while low-amplitude magnetic fields did not influence IDs. The persistent suppression of complex ED was prevented if the magnetic fields were applied in the presence of 10 μmol/L bicuculline (BIC), a γ-aminobutyric acid type A (GABA) receptor antagonist, while the application of BIC subsequent to a magnetic field application led to the reappearance of ID. The addition of BIC resulted in EDs that had previously been inhibited by magnetic fields, reappearing. Low-frequency magnetic stimulation was able to inhibit the conversion from interictal discharges (IIDs) or preictal discharges (PIDs) to IDs. This suppression was attributed to the modulation of GABA receptor activity.

摘要

如一些临床和实验室研究所表明的,低频电磁场(LF-EMF)刺激已被证明是一种抑制癫痫发作的有效方法。然而,LF-EMF抑制癫痫发作的机制仍不清楚。本研究的目的是利用大鼠海马切片探讨LF-EMF对癫痫样放电(EDs)的调节作用,并研究介导这些作用的潜在机制。海马切片中的EDs由无镁(零镁)人工脑脊液(ACSF)诱导,并使用体外微电极阵列(MEA)进行记录。设计了一个小型分米级以下线圈,并将其集成到一个柔性磁刺激装置中,该装置可以将具有不同参数的电磁场传递到切片上。在记录到稳定的ED事件后,施加频率为0.5 Hz(30分钟)、磁场强度为0.13 mT(电压输入5 V)和0.25 mT(电压输入20 V)的磁场。结果表明,高振幅0.5 Hz磁场可导致发作期放电(IDs)的持续抑制,而低振幅磁场对IDs无影响。如果在存在10 μmol/L荷包牡丹碱(BIC,一种γ-氨基丁酸A型(GABA)受体拮抗剂)的情况下施加磁场,则复杂ED的持续抑制会被阻止,而在施加磁场后应用BIC会导致ID再次出现。添加BIC导致先前被磁场抑制的EDs再次出现。低频磁刺激能够抑制发作间期放电(IIDs)或发作前期放电(PIDs)向IDs的转换。这种抑制归因于GABA受体活性的调节。

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