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在啮齿动物癫痫发生过程中,与网络相关的神经递质变化和癫痫传播。

Network-Related Changes in Neurotransmitters and Seizure Propagation During Rodent Epileptogenesis.

机构信息

From the Departments of Laboratory Medicine (R.D., M.R.S.S., N.T., Y.W., K.D., T.E.), Anesthesiology (S.E.G.), Neurosurgery (D.D.S.), Psychiatry (T.-S.W.L.), and Neurology (H.P.Z.), Yale School of Medicine, New Haven, CT; and Department of Molecular Medicine (S.O.-H., N.C.D.), Division of Anatomy, Institute for Basic Medical Sciences, University of Oslo, Norway.

出版信息

Neurology. 2021 May 4;96(18):e2261-e2271. doi: 10.1212/WNL.0000000000011846. Epub 2021 Mar 15.

Abstract

OBJECTIVE

To test the hypothesis that glutamate and GABA are linked to the formation of epilepsy networks and the triggering of spontaneous seizures, we examined seizure initiation/propagation characteristics and neurotransmitter levels during epileptogenesis in a translationally relevant rodent model of mesial temporal lobe epilepsy.

METHODS

The glutamine synthetase (GS) inhibitor methionine sulfoximine was infused into one of the hippocampi in laboratory rats to create a seizure focus. Long-term video-intracranial EEG recordings and brain microdialysis combined with mass spectrometry were used to examine seizure initiation, seizure propagation, and extracellular brain levels of glutamate and GABA.

RESULTS

All seizures (n = 78 seizures, n = 3 rats) appeared first in the GS-inhibited hippocampus of all animals, followed by propagation to the contralateral hippocampus. Propagation time decreased significantly from 11.65 seconds early in epileptogenesis (weeks 1-2) to 6.82 seconds late in epileptogenesis (weeks 3-4, paired test, = 0.025). Baseline extracellular glutamate levels were 11.6-fold higher in the hippocampus of seizure propagation (7.3 µM) vs the hippocampus of seizure onset (0.63 µM, analysis of variance/Fisher least significant difference, = 0.01), even though the concentrations of the major glutamate transporter proteins excitatory amino acid transporter subtypes 1 and 2 and xCT were unchanged between the brain regions. Finally, extracellular GABA in the seizure focus decreased significantly from baseline several hours before a spontaneous seizure (paired test/false discovery rate).

CONCLUSION

The changes in glutamate and GABA suggest novel and potentially important roles of the amino acids in epilepsy network formation and in the initiation and propagation of spontaneous seizures.

摘要

目的

为了验证谷氨酸和 GABA 与癫痫网络的形成和自发性癫痫发作的触发有关的假设,我们在一种具有翻译相关性的颞叶内侧癫痫啮齿动物模型中,检查了癫痫发生过程中的癫痫起始/传播特征和神经递质水平。

方法

实验室大鼠的一侧海马体中注入谷氨酰胺合成酶(GS)抑制剂蛋氨酸亚砜亚胺以创建癫痫灶。使用长期视频-颅内 EEG 记录和脑微透析结合质谱分析来检查癫痫发作的起始、传播以及细胞外脑谷氨酸和 GABA 水平。

结果

所有癫痫发作(n = 78 次癫痫发作,n = 3 只大鼠)均首先出现在所有动物的 GS 抑制海马体中,然后传播到对侧海马体。传播时间从癫痫发生早期(1-2 周)的 11.65 秒显著减少到癫痫发生晚期(3-4 周)的 6.82 秒(配对 t 检验, = 0.025)。在癫痫发作传播(7.3 µM)的海马体中,细胞外谷氨酸水平比癫痫发作起始(0.63 µM)高 11.6 倍(方差分析/Fisher 最小显著差异检验, = 0.01),尽管脑区之间兴奋性氨基酸转运体亚型 1 和 2 和 xCT 的主要谷氨酸转运蛋白浓度没有变化。最后,在自发性癫痫发作前数小时,癫痫灶中的细胞外 GABA 水平从基线显著下降(配对 t 检验/假发现率)。

结论

谷氨酸和 GABA 的变化表明这些氨基酸在癫痫网络形成以及自发性癫痫发作的起始和传播中具有新的和潜在重要的作用。

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