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星形胶质细胞碱化和缝隙连接解偶联致癫痫发作加重。

Exacerbation of Epilepsy by Astrocyte Alkalization and Gap Junction Uncoupling.

机构信息

Super-network Brain Physiology, Graduate School of Life Sciences, Tohoku University, Sendai 980-8577, Japan.

Institute of Neurobiology, Faculty of Mathematics and Natural Sciences, Heinrich Heine University Düsseldorf, 40225 Düsseldorf, Germany.

出版信息

J Neurosci. 2021 Mar 10;41(10):2106-2118. doi: 10.1523/JNEUROSCI.2365-20.2020. Epub 2021 Jan 21.

Abstract

Seizures invite seizures. At the initial stage of epilepsy, seizures intensify with each episode; however, the mechanisms underlying this exacerbation remain to be solved. Astrocytes have a strong control over neuronal excitability and the mode of information processing. This control is accomplished by adjusting the levels of various ions in the extracellular space. The network of astrocytes connected via gap junctions allows a wider or more confined distribution of these ions depending on the open probability of the gap junctions. K clearance relies on the K uptake by astrocytes and the subsequent diffusion of K through the astrocyte network. When astrocytes become uncoupled, K clearance becomes hindered. Accumulation of extracellular K leads to hyperexcitability of neurons. Here, using acute hippocampal slices from mice, we uncovered that brief periods of epileptiform activity result in gap junction uncoupling. In slices that experienced short-term epileptiform activity, extracellular K transients in response to glutamate became prolonged. Na imaging with a fluorescent indicator indicated that intercellular diffusion of small cations in the astrocytic syncytium via gap junctions became rapidly restricted after epileptiform activity. Using a transgenic mouse with astrocyte-specific expression of a pH sensor (Lck-EGFP), we confirmed that astrocytes react to epileptiform activity with intracellular alkalization. Application of Na/HCO cotransporter blocker led to the suppression of intracellular alkalization of astrocytes and to the prevention of astrocyte uncoupling and hyperactivity intensification both and Therefore, the inhibition of astrocyte alkalization could become a promising therapeutic strategy for countering epilepsy development. We aimed to understand the mechanisms underlying the plastic change of forebrain circuits associated with the intensification of epilepsy. Here, we demonstrate that first-time exposure to only brief periods of epileptiform activity results in acute disturbance of the intercellular astrocyte network formed by gap junctions in hippocampal tissue slices from mice. Moreover, rapid clearance of K from the extracellular space was impaired. Epileptiform activity activated inward Na/HCO cotransport in astrocytes by cell depolarization, resulting in their alkalization. Our data suggest that alkaline pH shifts in astrocytes lead to gap junction uncoupling, hampering K clearance, and thereby to exacerbation of epilepsy. Pharmacological intervention could become a promising new strategy to dampen neuronal hyperexcitability and epileptogenesis.

摘要

癫痫发作会引发癫痫发作。在癫痫的初始阶段,每次发作都会使癫痫发作加剧;然而,这种恶化的机制仍有待解决。星形胶质细胞对神经元兴奋性和信息处理方式具有很强的控制作用。这种控制是通过调节细胞外空间中各种离子的水平来实现的。通过缝隙连接连接的星形胶质细胞网络允许根据缝隙连接的开放概率更广泛或更局限地分布这些离子。K 的清除依赖于星形胶质细胞摄取 K,以及随后 K 通过星形胶质细胞网络扩散。当星形胶质细胞解偶联时,K 的清除会受到阻碍。细胞外 K 的积累导致神经元过度兴奋。在这里,我们使用来自小鼠的急性海马切片,发现短暂的癫痫样活动会导致缝隙连接解偶联。在经历短期癫痫样活动的切片中,谷氨酸引起的细胞外 K 瞬变延长。使用荧光指示剂进行 Na 成像表明,通过缝隙连接,星形胶质细胞合胞体中小阳离子的细胞间扩散在癫痫样活动后迅速受到限制。使用具有星形胶质细胞特异性表达 pH 传感器(Lck-EGFP)的转基因小鼠,我们证实星形胶质细胞对癫痫样活动的反应是细胞内碱化。应用 Na/HCO 共转运体阻滞剂导致星形胶质细胞细胞内碱化的抑制以及星形胶质细胞解偶联和过度兴奋加剧的抑制。因此,抑制星形胶质细胞碱化可能成为对抗癫痫发展的有前途的治疗策略。我们旨在了解与癫痫加剧相关的前脑回路可塑性的机制。在这里,我们证明仅首次暴露于短暂的癫痫样活动会导致来自小鼠海马组织切片的细胞间星形胶质细胞网络的急性干扰。此外,细胞外空间中 K 的快速清除受到损害。癫痫样活动通过细胞去极化激活星形胶质细胞中的内向 Na/HCO 共转运体,导致其碱化。我们的数据表明,星形胶质细胞中的碱性 pH 变化导致缝隙连接解偶联,阻碍 K 的清除,从而加剧癫痫发作。药理学干预可能成为抑制神经元过度兴奋和癫痫发生的有前途的新策略。

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