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内嗅皮层II层神经元阈下振荡和差异电反应性的离子机制。

Ionic mechanisms for the subthreshold oscillations and differential electroresponsiveness of medial entorhinal cortex layer II neurons.

作者信息

Klink R, Alonso A

机构信息

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

出版信息

J Neurophysiol. 1993 Jul;70(1):144-57. doi: 10.1152/jn.1993.70.1.144.

Abstract
  1. Layer II of the medial entorhinal cortex is composed of two electrophysiologically and morphologically distinct types of projection neurons: stellate cells (SCs), which are distinguished by rhythmic subthreshold oscillatory activity, and non-SCs. The ionic mechanisms underlying their differential electroresponsiveness, particularly in the subthreshold range of membrane potentials, were investigated in an "in vitro" slice preparation. 2. In both SCs and non-SCs, the apparent membrane input resistance was markedly voltage dependent, respectively decreasing or increasing at hyperpolarized or subthreshold depolarized potential levels. Thus the neurons displayed inward rectification in the hyperpolarizing and depolarizing range. 3. In the depolarizing range, inward rectification was blocked by tetrodotoxin (TTX, 1 microM) in both types of neurons and thus shown to depend on the presence of a persistent low-threshold Na+ conductance (gNap). However, in the presence of TTX, pronounced outward rectification became manifest in the subthreshold depolarizing range of membrane potentials (positive to -60 mV) in the SCs but not in the non-SCs. 4. The rhythmic subthreshold membrane potential oscillations that were present only in the SCs were abolished by TTX and not by Ca2+ conductance block with Cd2+ or Co2+. Subthreshold oscillations thus rely on the activation of voltage-gated Na+, and not Ca2+, conductances. The Ca2+ conductance block also had no effect on the subthreshold outward rectification. 5. Prominent time-dependent inward rectification in the hyperpolarizing range in the SCs persisted after Na(+)- and Ca2+ conductance block. This rectification was not affected by Ba2+ (1 mM), but was blocked by Cs+ (1-4 mM). Therefore, it is most probably generated by a hyperpolarization-activated cationic current (Q-like current). However, the Q-like current appears to play no major role in the generation of subthreshold rhythmic membrane potential oscillations, because these persisted in the presence of Cs+. 6. On the other hand, in the SCs, the fast, sustained, outward rectification that strongly developed (after Na+ conductance block) at the oscillatory voltage level was not affected by Cs+ but was blocked by Ba2+ (1 mM). Barium was also effective in blocking the subthreshold membrane potential oscillations. 7. In the non-SCs, which do not generate subthreshold rhythmic membrane potential oscillations or manifest subthreshold outward rectification in TTX, Ca2+ conductance block abolished spike repolarization and caused the development of long-lasting Na(+)-dependent plateau potentials at a high suprathreshold voltage level. At this level, where prominent delayed rectification is present, the Na+ plateaus sustained rhythmic membrane potential oscillations.(ABSTRACT TRUNCATED AT 400 WORDS)
摘要
  1. 内侧内嗅皮层的第II层由两种电生理和形态上不同的投射神经元组成:星状细胞(SCs),其特征在于有节律的阈下振荡活动,以及非星状细胞。在“体外”脑片制备中研究了它们不同电反应性的离子机制,特别是在膜电位的阈下范围内。2. 在星状细胞和非星状细胞中,表观膜输入电阻均明显依赖电压,分别在超极化或阈下去极化电位水平时降低或增加。因此,这些神经元在超极化和去极化范围内均表现出内向整流。3. 在去极化范围内,两种类型的神经元中河豚毒素(TTX,1 microM)均阻断内向整流,因此表明其依赖于持续的低阈值钠电导(gNap)的存在。然而,在存在TTX的情况下,在星状细胞的膜电位阈下去极化范围内(正于 -60 mV)出现明显的外向整流,而非星状细胞中则没有。4. 仅在星状细胞中存在的有节律的阈下膜电位振荡被TTX消除,而不是被用Cd2+或Co2+阻断钙电导所消除。因此,阈下振荡依赖于电压门控钠电导而非钙电导的激活。钙电导阻断对阈下外向整流也没有影响。5. 星状细胞在超极化范围内突出的时间依赖性内向整流在钠和钙电导阻断后仍然存在。这种整流不受Ba2+(1 mM)影响,但被Cs+(1 - 4 mM)阻断。因此,它很可能是由超极化激活的阳离子电流(类Q电流)产生的。然而,类Q电流似乎在阈下有节律的膜电位振荡的产生中不起主要作用,因为在存在Cs+的情况下这些振荡仍然存在。6. 另一方面,在星状细胞中,在振荡电压水平强烈发展(在钠电导阻断后)的快速、持续的外向整流不受Cs+影响,但被Ba2+(1 mM)阻断。钡也有效地阻断了阈下膜电位振荡。7. 在非星状细胞中,其在TTX中不产生阈下有节律的膜电位振荡或表现出阈下外向整流,钙电导阻断消除了动作电位复极化,并在高阈上电压水平导致了持久的钠依赖性平台电位的发展。在这个存在明显延迟整流的水平,钠平台维持有节律的膜电位振荡。(摘要截断于400字)

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