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大鼠海马颗粒细胞兴奋性突触电流的膜片钳分析

Patch clamp analysis of excitatory synaptic currents in granule cells of rat hippocampus.

作者信息

Keller B U, Konnerth A, Yaari Y

机构信息

Max-Planck-Institut für biophysikalische Chemie, Göttingen, Germany.

出版信息

J Physiol. 1991 Apr;435:275-93. doi: 10.1113/jphysiol.1991.sp018510.

Abstract
  1. Excitatory postsynaptic potentials (EPSPs) and their underlying currents (EPSCs) were recorded from dentate granule cells in thin hippocampal slices of rats using the tight-seal whole-cell recording technique. 2. At resting membrane potentials (ca -60 to -70 mV), the EPSCs clearly consisted of a dominant fast and a smaller slow component. The slow EPSC component markedly increased with depolarization. This resulted in a region of negative slope conductance (between -50 and -30 mV) in the peak current-voltage (I-V) relation of the dual-component EPSC in most neurones. The EPSCs reversed entirely at -1.2 +/- 2.8 mV (n = 15). 3. Using selective antagonists of N-methyl-D-aspartate (NMDA) and non-NMDA excitatory amino acid receptors, two pharmacologically distinct components of the natural EPSCs were isolated. The non-NMDA EPSCs displayed a linear I-V relation. Their rise times (0.5-1.9 ms) were independent of membrane voltage but seemed to depend critically on the precise dendritic location of the synapse. Their decay was approximated by a single exponential with a time constant ranging from 3 to 9 ms. The time course of these EPSCs was independent of changes in extracellular Mg2+. 4. The NMDA EPSCs displayed a non-linear I-V relation. At resting membrane potentials their peak amplitudes were 20 pA and increased steadily with depolarization to -30 mV. At membrane voltages positive to -30 mV the peak I-V relation was linear. The rise times of NMDA EPSCs ranged from 4 to 9 ms and were insensitive to membrane voltage. 5. The NMDA EPSCs decayed biexponentially. Both time constants, tau f and tau s, increased with depolarization in an exponential manner, tau s being more voltage dependent than tau f. Lowering extracellular Mg2+ slightly reduced both rate constants but did not completely abolish their voltage sensitivity. 6. Bath application of NMDA to outside-out patches from granule cells induced single channel currents of 52 pS in nominally Mg(2+)-free solutions. They displayed a burst-like single-channel activity with clusters of bursts lasting several hundreds of milliseconds. Currents through single NMDA receptor channels reversed around 0 mV. 7. The fractional contributions of NMDA and non-NMDA components to peak currents and synaptic charge transfer were assessed. At resting membrane potential the NMDA EPSC component accounted for 23% of the peak current and for 64% of the synaptic charge transfer. The contribution of the NMDA EPSC component to the synaptic charge transfer strongly increased with small depolarizations from rest.
摘要
  1. 采用紧密密封全细胞记录技术,在大鼠海马薄片的齿状颗粒细胞中记录兴奋性突触后电位(EPSP)及其基础电流(EPSC)。2. 在静息膜电位(约 -60至 -70 mV)时,EPSC明显由一个占主导的快速成分和一个较小的慢速成分组成。慢速EPSC成分随去极化显著增加。这导致大多数神经元中双成分EPSC的峰值电流 - 电压(I - V)关系在 -50至 -30 mV之间出现负斜率电导区域。EPSC在 -1.2 ± 2.8 mV时完全反转(n = 15)。3. 使用N - 甲基 - D - 天冬氨酸(NMDA)和非NMDA兴奋性氨基酸受体的选择性拮抗剂,分离出天然EPSC的两个药理学上不同的成分。非NMDA EPSC呈现线性I - V关系。它们的上升时间(0.5 - 1.9 ms)与膜电压无关,但似乎关键取决于突触在树突上的确切位置。它们的衰减可用单个指数近似,时间常数范围为3至9 ms。这些EPSC的时间进程与细胞外Mg2 + 的变化无关。4. NMDA EPSC呈现非线性I - V关系。在静息膜电位时,其峰值幅度为20 pA,并随着去极化至 -30 mV而稳定增加。在膜电压高于 -30 mV时,峰值I - V关系呈线性。NMDA EPSC的上升时间范围为4至9 ms,对膜电压不敏感。5. NMDA EPSC呈双指数衰减。两个时间常数,τf和τs,均随去极化呈指数增加,τs比τf对电压更敏感。降低细胞外Mg2 + 略微降低了两个速率常数,但并未完全消除它们的电压敏感性。6. 将NMDA浴应用于颗粒细胞的外向膜片,在名义上无Mg(2 +)的溶液中诱导出52 pS的单通道电流。它们表现出爆发样单通道活动,爆发簇持续数百毫秒。通过单个NMDA受体通道的电流在约0 mV时反转。7. 评估了NMDA和非NMDA成分对峰值电流和突触电荷转移的分数贡献。在静息膜电位时,NMDA EPSC成分占峰值电流的23%,占突触电荷转移的64%。从静息状态进行小幅度去极化时,NMDA EPSC成分对突触电荷转移的贡献显著增加。
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/8aef/1181462/7afaddc3c0e0/jphysiol00447-0282-a.jpg

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