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通过对海兔神经元进行原位单通道分析揭示Ca2(+)-激活的K+电流在神经元功能中的作用

Ca2(+)-activated K+ current involvement in neuronal function revealed by in situ single-channel analysis in Helix neurones.

作者信息

Gola M, Ducreux C, Chagneux H

机构信息

Laboratoire de Neurobiologie, CNRS, Marseille, France.

出版信息

J Physiol. 1990 Jan;420:73-109. doi: 10.1113/jphysiol.1990.sp017902.

Abstract
  1. The properties of single calcium-activated potassium channels (or C-channels) were studied in cell-attached patches using the patch-clamp technique. Experiments were performed on identified Ca2(+)-dependent U cells in juvenile specimens (1-2 months old) of Helix aspersa. 2. The criteria used to identify C-channels were based on comparison between macroscopic C-currents and currents reconstructed from unitary recordings. Both currents had a slow activation rate at large positive potentials which turned into fast activation after large Ca2+ entries. Both currents were blocked by intracellularly injected EGTA. 3. The unitary conductance in normal (5 mM) or reduced (0.5 mM) [K+]o ranged from 24 to 65 pS (mean +/- S.D., 48 +/- 13; n = 64). With 85-110 mM [K+]o, which is approximately equal to the internal [K+], the conductance was 64 pS and the reversal potential was approximately 0 mV. 4. C-channels in U cells were distributed in clusters of three to ten channels (mean 5.05 channels in seventy-five patches). Calcium channels were present in patches containing clustered C-channels. C-channels within clusters behaved independently. 5. With patch electrode containing 8 mM-calcium, C-channels opened transiently upon patch depolarization. Reopenings in quiescent depolarized patches were induced by whole-cell spikes triggered by current pulses applied to an intracellular electrode. Apparent inactivation of C-channels in depolarized patches was in fact due to a decrease in [Ca2+]i resulting from inactivation of Ca2+ channels. 6. Calcium-free saline solutions in the patch electrodes prevented C-channels from opening upon patch depolarization. Entry of calcium through the surrounding membrane induced delayed openings in the patch. Peak opening probability Po occurred 330 +/- 30 ms after a brief Ca2+ entry with a lag period of 50-80 ms. With patch electrodes filled with Ca2(+)-containing saline solutions and under conditions which maximized C-channel opening, peak Po was reached in 20-50 ms. The same value was observed for the whole-cell C-current. 7. The peak Po at a given patch potential and in response to a whole-cell spike was not altered by a previous long-lasting patch depolarization, or by producing several successive Ca2+ entries. Thus, C-channels did not appear to be inactivated by depolarization or increase in [Ca2+]i. 8. C-channels were found to be relatively highly voltage dependent, with an e-fold increase in Po per 14.9 mV increase in potential.(ABSTRACT TRUNCATED AT 400 WORDS)
摘要
  1. 使用膜片钳技术在细胞贴附式膜片中研究了单个钙激活钾通道(或C通道)的特性。实验在1 - 2月龄的庭院蜗牛幼体标本中已鉴定的Ca2(+)依赖性U细胞上进行。2. 用于鉴定C通道的标准基于宏观C电流与从单通道记录重建的电流之间的比较。两种电流在大的正电位下激活速率都很慢,在大量Ca2+内流后转变为快速激活。两种电流都被细胞内注射的EGTA阻断。3. 在正常(5 mM)或降低(0.5 mM)的细胞外[K+]浓度下,单通道电导范围为24至65 pS(平均值±标准差,48±13;n = 64)。当细胞外[K+]浓度为85 - 110 mM(约等于细胞内[K+]浓度)时,电导为64 pS,反转电位约为0 mV。4. U细胞中的C通道以三到十个通道的簇形式分布(在75个膜片中平均为5.05个通道)。含有成簇C通道的膜片中存在钙通道。簇内的C通道独立发挥作用。5. 当膜片电极含有8 mM钙时,C通道在膜片去极化时短暂开放。静息去极化膜片中的再次开放由施加到细胞内电极的电流脉冲触发的全细胞尖峰诱导。去极化膜片中C通道的明显失活实际上是由于Ca2+通道失活导致细胞内[Ca2+]浓度降低。6. 膜片电极中的无钙盐溶液可防止C通道在膜片去极化时开放。钙通过周围膜的进入诱导膜片中延迟开放。在短暂Ca2+进入后330±30 ms出现峰值开放概率Po,滞后时间为50 - 80 ms。当膜片电极填充含Ca2(+)的盐溶液并在使C通道开放最大化的条件下,20 - 50 ms内达到峰值Po。全细胞C电流也观察到相同的值。7. 在给定的膜片电位下,响应全细胞尖峰的峰值Po不会因先前的长时间膜片去极化或多次连续的Ca2+进入而改变。因此,C通道似乎不会因去极化或细胞内[Ca2+]浓度增加而失活。8. 发现C通道相对高度依赖电压,电位每增加14.9 mV,Po增加一倍。(摘要截断于400字)

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Calcium-activated potassium channels: regulation by calcium.钙激活钾通道:钙的调节作用
J Bioenerg Biomembr. 1991 Aug;23(4):537-60. doi: 10.1007/BF00785810.

本文引用的文献

1
Time dependence of the calcium-activated potassium current.钙激活钾电流的时间依赖性。
Biophys J. 1981 Oct;36(1):297-302. doi: 10.1016/S0006-3495(81)84729-7.
6
K+ channels gated by voltage and ions.由电压和离子门控的钾离子通道。
Annu Rev Physiol. 1984;46:485-95. doi: 10.1146/annurev.ph.46.030184.002413.

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