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SK channels participate in the formation of after burst hyperpolarization and partly inhibit the burst strength of epileptic ictal discharges

机译:SK通道参与爆发后超极化的形成并部分抑制癫痫发作的爆发强度

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摘要

Epilepsy is a common disease of the central nervous system. Tetanic spasms and convulsions are the key symptoms exhibited during epileptic seizures. However, the majority of patients have a significant post-seizure silence following a serious seizure; the underlying molecular neural mechanisms in this burst interval are unclear. The aim of the present study was to reveal the effect and role of calcium-activated potassium channels during this seizure interval silence period. Cyclothiazide (CTZ) was used to establish the seizure model in rat hippocampal cultured neurons, then the after-burst hyperpolarization (ABH) activities were recorded using the patch clamp technique. By comparing the amplitude and duration of hyperpolarizations, the present study analyzed the association between epileptiform bursts and ABHs when treated with different concentrations of CTZ. In addition, apamin and iberiotoxin were used for pharmacological tests. An intracranial electroencephalogram (EEG) recording was also performed when the CTZ experiments were repeated on animals. The experimental results revealed that treatment with high levels of CTZ induced larger ABHs and was associated with stronger burst activities, which suggested a positive correlation between ABH and epileptiform burst. Apamin, an antagonist of small conductance calcium-activated potassium (SK) channels, decreased the amplitude of ABH; however, reduced ABH was associated with enhanced burst activity, in burst probability and burst strength. These results revealed an important role of SK channels in the formation of ABH and in the inhibition of burst activity. Iberiotoxin, an antagonist of big conductance calcium-activated potassium (BK) channels, had no significant effect on ABH and burst activity. In addition, a positive correlation was identified between burst duration and ABH parameters. An intracellular calcium chelator impaired the amplitude of ABH; however, it did not affect the burst parameters. The rat cortical EEG recordings also exhibited a similar positive correlation between the duration of epileptic burst and after burst depression. Collectively, the results indicate that ABH may serve in the physiological feedback system to reduce the strength of epileptic hyperexcitation, a process in which SK channels are important.
机译:癫痫病是中枢神经系统的常见疾病。强直性痉挛和抽搐是癫痫发作中表现出的主要症状。然而,大多数患者在严重癫痫发作后有明显的癫痫发作后沉默。在这个爆发间隔中潜在的分子神经机制尚不清楚。本研究的目的是揭示在此发作间隔沉默期中钙激活钾通道的作用和作用。用Cyclothiazide(CTZ)建立大鼠海马培养的神经元的癫痫发作模型,然后使用膜片钳技术记录爆发后超极化(ABH)活性。通过比较超极化的幅度和持续时间,本研究分析了用不同浓度的CTZ治疗癫痫样爆发与ABHs之间的关联。另外,将阿帕明和埃博毒素用于药理学测试。当对动物重复进行CTZ实验时,还进行了颅内脑电图(EEG)记录。实验结果表明,高水平的CTZ处理可诱发较大的ABH,并且与更强的爆发活动相关,这表明ABH与癫痫样爆发之间呈正相关。最小的电导钙激活钾(SK)通道的拮抗剂Apamin降低了ABH的幅度。然而,降低的ABH与增强的爆发活性,爆发概率和爆发强度有关。这些结果揭示了SK通道在ABH的形成和抑制爆发活性中的重要作用。大电流电导钙激活钾(BK)通道的拮抗剂伊贝毒素对ABH和爆发活性没有明显影响。此外,在脉冲持续时间和ABH参数之间确定了正相关。细胞内钙螯合剂削弱了ABH的幅度;但是,它不影响突发参数。大鼠皮层脑电图记录还显示出癫痫持续时间和猝发抑制后的相似正相关。总体而言,结果表明ABH可能在生理反馈系统中发挥作用,以降低癫痫性过度兴奋的强度,而SK通道很重要。

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