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匹罗卡品诱导Wistar大鼠急性癫痫发作后颞叶皮质和海马谷氨酸能传递特性的改变

Alterations in Properties of Glutamatergic Transmission in the Temporal Cortex and Hippocampus Following Pilocarpine-Induced Acute Seizures in Wistar Rats.

作者信息

Amakhin Dmitry V, Malkin Sergey L, Ergina Julia L, Kryukov Kirill A, Veniaminova Ekaterina A, Zubareva Olga E, Zaitsev Aleksey V

机构信息

Laboratory of Molecular Mechanisms of Neural Interactions, Sechenov Institute of Evolutionary Physiology and Biochemistry of the Russian Academy of SciencesSaint Petersburg, Russia.

Federal Almazov North-West Medical Research Centre, Institute of Experimental MedicineSaint Petersburg, Russia.

出版信息

Front Cell Neurosci. 2017 Aug 31;11:264. doi: 10.3389/fncel.2017.00264. eCollection 2017.

Abstract

Temporal lobe epilepsy (TLE) is the most common type of focal epilepsy in humans, and is often developed after an initial precipitating brain injury. This form of epilepsy is frequently resistant to pharmacological treatment; therefore, the prevention of TLE is the prospective approach to TLE therapy. The lithium-pilocarpine model in rats replicates some of the main features of TLE in human, including the pathogenic mechanisms of cell damage and epileptogenesis after a primary brain injury. In the present study, we investigated changes in the properties of glutamatergic transmission during the first 3 days after pilocarpine-induced acute seizures in Wistar rats (PILO-rats). Using RT-PCR and electrophysiological techniques, we compared the changes in the temporal cortex (TC) and hippocampus, brain areas differentially affected by seizures. On the first day, we found a transient increase in a ratio of α-amino-3-hydroxy-5-methyl-4-isoxazolepropionic acid (AMPA) and N-methyl d-aspartate (NMDA) receptors in the excitatory synaptic response in pyramidal neurons of the CA1 area of the dorsal hippocampus, but not in the TC. This was accompanied by an increase in the slope of input-output (I/O) curves for fEPSPs recorded in CA1, suggesting an enhanced excitability in AMPARs in this brain area. There was no difference in the AMPA/NMDA ratio in control rats on the third day. We also revealed the alterations in NMDA receptor subunit composition in PILO-rats. The GluN2B/GluN2A mRNA expression ratio increased in the dorsal hippocampus but did not change in the ventral hippocampus or the TC. The kinetics of NMDA-mediated evoked EPSCs in hippocampal neurons was slower in PILO-rats compared with control animals. Ifenprodil, a selective antagonist of GluN2B-containing NMDARs, diminished the area and amplitude of evoked EPSCs in CA1 pyramidal cells more efficiently in PILO-rats compared with control animals. These results demonstrate that PILO-induced seizures lead to more severe alterations in excitatory synaptic transmission in the dorsal hippocampus than in the TC. Seizures affect the relative contribution of AMPA and NMDA receptor conductances in the synaptic response and increase the proportion of GluN2B-containing NMDARs in CA1 pyramidal neurons. These alterations disturb normal circuitry functions in the hippocampus, may cause neuron damage, and may be one of the important pathogenic mechanisms of TLE.

摘要

颞叶癫痫(TLE)是人类最常见的局灶性癫痫类型,通常在初次脑部损伤后发生。这种癫痫形式通常对药物治疗有抗性;因此,预防TLE是TLE治疗的前瞻性方法。大鼠的锂-匹罗卡品模型复制了人类TLE的一些主要特征,包括原发性脑损伤后细胞损伤和癫痫发生的致病机制。在本研究中,我们调查了匹罗卡品诱导Wistar大鼠(匹罗卡品大鼠)急性癫痫发作后头3天内谷氨酸能传递特性的变化。使用逆转录聚合酶链反应(RT-PCR)和电生理技术,我们比较了颞叶皮质(TC)和海马体(癫痫发作影响不同的脑区)的变化。第一天,我们发现背侧海马体CA1区锥体细胞兴奋性突触反应中α-氨基-3-羟基-5-甲基-4-异恶唑丙酸(AMPA)和N-甲基-D-天冬氨酸(NMDA)受体的比例短暂增加,但在TC中未发现。这伴随着CA1区记录的场兴奋性突触后电位(fEPSP)的输入-输出(I/O)曲线斜率增加,表明该脑区AMPA受体的兴奋性增强。第三天,对照大鼠的AMPA/NMDA比例没有差异。我们还揭示了匹罗卡品大鼠NMDA受体亚基组成的改变。背侧海马体中GluN2B/GluN2A mRNA表达比例增加,但腹侧海马体或TC中未改变。与对照动物相比,匹罗卡品大鼠海马神经元中NMDA介导的诱发兴奋性突触后电流(EPSC)的动力学较慢。ifenprodil是一种含GluN2B的NMDARs的选择性拮抗剂,与对照动物相比,在匹罗卡品大鼠中更有效地降低了CA1锥体细胞中诱发EPSC的面积和幅度。这些结果表明,匹罗卡品诱导的癫痫发作导致背侧海马体兴奋性突触传递的改变比TC更严重。癫痫发作影响突触反应中AMPA和NMDA受体电导的相对贡献,并增加CA1锥体细胞中含GluN2B的NMDARs的比例。这些改变扰乱了海马体中的正常电路功能,可能导致神经元损伤,并且可能是TLE的重要致病机制之一。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/4413/5584016/e90ad957cddb/fncel-11-00264-g0001.jpg

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