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EXTRACELLULAR Ca2+ FLUCTUATIONS IN VIVO AFFECT AFTERHYPERPOLARIZATION POTENTIAL AND MODIFY FIRING PATTERNS OF NEOCORTICAL NEURONS

机译:体内细胞外Ca2 +涨落aFFECT新皮层神经元后超极化电位和修改放电模式

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摘要

Neocortical neurons can be classified in four major electrophysiological types according to their pattern of discharge: Regular-Spiking (RS), Intrinsically-Bursting (IB), Fast-Rhythmic-Bursting (FRB), and Fast-Spiking (FS). Previously, we have shown that these firing patterns are not fixed and can change as a function of membrane potential and states of vigilance. Other studies have reported that extracellular calcium concentration ([Ca2+]o) fluctuates as a function of the phase of the cortical slow oscillation. In the present study we investigated how spontaneous and induced changes in [Ca2+]o affect the properties of action potentials (APs) and firing patterns in cortical neurons in vivo. Intracellular recordings were performed in cats anesthetized with ketamine-xylazine during spontaneous [Ca2+]o fluctuation and while changing [Ca2+]o with reverse microdialysis. When [Ca2+]o fluctuated spontaneously according to the phase of the slow oscillation, we found an increase of the firing threshold and a decrease of the afterhyperpolarization (AHP) amplitude during the depolarizing (active, up) phase of the slow oscillation and some neurons also changed their firing pattern as compared with the hyperpolarizing (silent, down) phase. Induced changes in [Ca2+]o significantly affected the AP properties in all neurons. The AHP amplitude was increased in high calcium conditions and decreased in low calcium conditions, in particular the earliest components. Modulation of spike AHP resulted in notable modulation of intrinsic firing pattern and some RS neurons revealed burst firing when [Ca2+]o was decreased. We also found an increase in AHP amplitude in high [Ca2+]o with in vitro preparation. We suggest that during spontaneous network oscillations in vivo, the dynamic changes of firing patterns depend partially on fluctuations of the [Ca2+]o.
机译:根据其放电模式,新皮层神经元可分为四种主要的电生理类型:规律性发作(RS),内在性发作(IB),快速节律性发作(FRB)和快速性发作(FS)。以前,我们已经证明这些点火模式不是固定的,并且可以根据膜电位和警惕状态而变化。其他研究报道,细胞外钙浓度([Ca 2 + ] o)随皮质缓慢振荡的相位而波动。在本研究中,我们研究了[Ca 2 + ] o的自发和诱导变化如何影响体内皮层神经元的动作电位(APs)和放电模式。在自发的[Ca 2 + ] o波动过程中以及在通过反向微透析改变[Ca 2 + ] o的过程中,用氯胺酮-甲苯噻嗪麻醉的猫进行细胞内记录。当[Ca 2 + ] o根据缓慢振荡的相位自发地波动时,我们发现去极化过程中激发阈值增加,而超极化后振幅(AHP)降低(主动,向上相较于超极化(沉默,向下)阶段,某些神经元也改变了其发射方式。 [Ca 2 + ] o的诱导变化显着影响所有神经元的AP特性。在高钙条件下,AHP幅度增加,而在低钙条件下,尤其是最早的成分,AHP幅度降低。尖峰AHP的调节导致内在放电模式的明显调节,当[Ca 2 + ] o降低时,一些RS神经元显示出爆发放电。我们还发现,通过体外制备,高[Ca 2 + ] o中的AHP幅度会增加。我们建议在体内自发网络振荡期间,放电模式的动态变化部分取决于[Ca 2 + ] o的波动。

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