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Cellular interactions in the rat somatosensory thalamocortical system during normal and epileptic 5–9 Hz oscillations

机译:在正常和癫痫5–9 Hz振荡过程中大鼠体感丘脑皮质系统中的细胞相互作用

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摘要

In Genetic Absence Epilepsy Rats from Strasbourg (GAERS), generalized spike-and-wave (SW) discharges (5–9 SW s−1) develop during quiet immobile wakefulness from a natural, medium-voltage, 5–9 Hz rhythm. This study examines the spatio-temporal dynamics of cellular interactions in the somatosensory thalamocortical system underlying the generation of normal and epileptic 5–9 Hz oscillations. Paired single-unit and multi-unit recordings between the principal elements of this circuit and intracellular recordings of thalamic, relay and reticular, neurones were conducted in neuroleptanalgesied GAERS and control, non-epileptic, rats. The identity of the recorded neurones was established following juxtacellular or intracellular marking. At least six major findings have emerged from this study. (1) In GAERS, generalized spike-and-wave discharges were correlated with synchronous rhythmic firings in related thalamic relay and reticular neurones. (2) Usually, corticothalamic discharges phase-led related relay and reticular firings. (3) A depolarizing wave emerging from a barrage of EPSPs was the cause of both relay and reticular discharges. (4) In some relay cells, which had a relatively high membrane input resistance, the depolarizing wave had the shape of a ramp, which could trigger a low-threshold Ca2+ spike. (5) In reticular cells, the EPSP barrage could further trigger voltage-dependent depolarizations. (6) The epilepsy-related thalamic, relay and reticular, intracellular activities were similar to the normal-related thalamic activities. Overall, these findings strongly suggest that, during absence seizures, corticothalamic neurones play a primary role in the synchronized excitation of thalamic relay and reticular neurones. The present study further suggests that absence-related spike-and-wave discharges correspond to hypersynchronous wake-related physiological oscillations.
机译:在史特拉斯堡的遗传缺失型癫痫大鼠(GAERS)中,在自然,中等电压的静止不动觉醒期间,产生了广泛的尖峰波(SW)放电(5–9 SW s -1 ) 5–9 Hz节奏。这项研究检查了在正常的和癫痫的5-9 Hz振荡的基础下的体感丘脑皮质系统中细胞相互作用的时空动态。在神经痛的GAERS和非癫痫性对照大鼠中,进行了该回路主要元件与丘脑,中继和网状神经元细胞内记录的配对单单位和多单位记录。并发细胞或细胞内标记后,确定记录的神经元的身份。这项研究至少得出了六个主要发现。 (1)在GAERS中,相关的丘脑中转和网状神经元的广义节律放电与同步节律放电相关。 (2)通常,皮层丘脑放电引起相位相关的中继和网状放电。 (3)一系列EPSP引起的去极化波是中继放电和网状放电的原因。 (4)在某些具有较高膜输入电阻的中继电池中,去极化波呈斜坡形状,可能会触发低阈值Ca 2 + 尖峰。 (5)在网状细胞中,EPSP弹幕可能进一步触发电压依赖性去极化。 (6)与癫痫有关的丘脑,中继和网状细胞内活动与正常与相关的丘脑活动相似。总体而言,这些发现强烈表明,在失神发作期间,皮质丘脑神经元在丘脑中继和网状神经元的同步激发中起主要作用。本研究进一步表明,与缺勤相关的尖峰和波放电对应于与超同步唤醒相关的生理振荡。

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