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内嗅皮层第二层星状细胞和类锥体细胞的电反应差异

Differential electroresponsiveness of stellate and pyramidal-like cells of medial entorhinal cortex layer II.

作者信息

Alonso A, Klink R

机构信息

Department of Neurology and Neurosurgery, McGill University, Montreal, Quebec, Canada.

出版信息

J Neurophysiol. 1993 Jul;70(1):128-43. doi: 10.1152/jn.1993.70.1.128.

Abstract
  1. The electroresponsive properties of neurons from layer II of the rat medial entorhinal cortex (MEC) were studied by intracellular recording under current clamp in an in vitro brain slice preparation. From a total of 184 cells that fulfilled our criteria for recording stability, two groups of projection neurons were distinguished on the basis of their intrinsic biophysical properties and morphological characteristics (demonstrated by intracellular biocytin injection; n = 34). 2. Stellate cells (SCs) were the most abundant (69%). They were highly electroresponsive, and minimal changes (1-3 mV) of membrane potential generated an active response. Subthreshold depolarizing or hyperpolarizing current pulse injection always caused the membrane potential to attain an early peak and then sag to a lower level. Depolarization-induced "sags" were larger and determined early firing in all cells. The voltage-current relationship of SCs was markedly non-linear, demonstrating robust inward rectification in the hyperpolarizing and depolarizing range. 3. SCs generated persistent rhythmic subthreshold voltage oscillations on DC depolarization positive to -60 mV. The mean frequency of the oscillations was 8.6 Hz (theta range) at a membrane potential of approximately -55 mV, at which level occasional single spiking also occurred. At slightly more positive potentials, a striking 1- to 3-Hz repetitive bursting pattern emerged. This consisted of nonadapting trains of spikes ("clusters") interspersed with subthreshold oscillations that had a mean frequency of 21.7 Hz (beta range). 4. Nonstellate cells (39%; mostly pyramidal-like) displayed time-dependent inward rectification that was less pronounced than that of SCs, and minimal depolarization-induced sags. On threshold depolarization, firing was always preceded by a slowly rising ramp depolarization and thus occurred with a long delay. Inward rectification in the depolarizing range was very pronounced. However, non-SCs did not generate persistent rhythmic subthreshold oscillatory activity or spike clusters. 5. Of the electrophysiological parameters quantified, spike threshold, spike duration, depolarizing afterpotential amplitude and apparent membrane time constant demonstrated statistically significant differences between SCs and non-SCs. 6. The repetitive hiring properties in response to square current pulses of short duration (< 500 ms) were also different between SCs and non-SCs. First, most SCs displayed a bilinear frequency-current (f-I) relationship for only the first interspike interval, whereas most non-SCs displayed a bilinear relationship for all intervals. Second, SCs had a much steeper primary f-I slope for early intervals than non-SCs. Finally, SCs displayed more pronounced and faster spike frequency adaptation than non-SCs.(ABSTRACT TRUNCATED AT 400 WORDS)
摘要
  1. 在体外脑片制备中,通过电流钳下的细胞内记录研究了大鼠内侧内嗅皮层(MEC)II层神经元的电反应特性。在总共184个符合记录稳定性标准的细胞中,根据其内在生物物理特性和形态特征(通过细胞内生物素注射证明;n = 34)区分出两组投射神经元。2. 星状细胞(SCs)最为丰富(69%)。它们具有高度电反应性,膜电位的微小变化(1 - 3 mV)就能产生主动反应。阈下去极化或超极化电流脉冲注入总是使膜电位先达到一个峰值,然后下降到较低水平。去极化诱导的“下垂”更大,并决定了所有细胞的早期放电。SCs的电压 - 电流关系明显呈非线性,在超极化和去极化范围内表现出强烈的内向整流。3. 在直流去极化至 -60 mV以上时,SCs产生持续的节律性阈下电压振荡。在膜电位约为 -55 mV时,振荡的平均频率为8.6 Hz(θ范围),在这个水平偶尔也会出现单个动作电位。在稍更正的电位下,出现了显著的1 - 3 Hz重复爆发模式。这由不适应的动作电位序列(“簇”)与平均频率为21.7 Hz(β范围)的阈下振荡交替组成。4. 非星状细胞(39%;大多为锥体形)表现出时间依赖性内向整流,但其程度不如SCs明显,且去极化诱导的下垂最小。在阈下去极化时,放电总是先有一个缓慢上升的斜坡去极化,因此延迟很长时间才发生。在去极化范围内的内向整流非常明显。然而,非SCs不产生持续的节律性阈下振荡活动或动作电位簇。5. 在量化的电生理参数中,动作电位阈值、动作电位持续时间、去极化后电位幅度和表观膜时间常数在SCs和非SCs之间表现出统计学上的显著差异。6. 在对短持续时间(< 500 ms)的方形电流脉冲的重复放电特性方面,SCs和非SCs也有所不同。首先,大多数SCs仅在第一个峰峰间期显示双线性频率 - 电流(f - I)关系,而大多数非SCs在所有间期都显示双线性关系。其次,SCs在早期间期的初级f - I斜率比非SCs陡峭得多。最后,SCs比非SCs表现出更明显、更快的动作电位频率适应性。(摘要截断于400字)

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