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兔心室肌细胞内向整流钾电流的单通道分析

Single channel analysis of the inward rectifier K current in the rabbit ventricular cells.

作者信息

Kameyama M, Kiyosue T, Soejima M

出版信息

Jpn J Physiol. 1983;33(6):1039-56. doi: 10.2170/jjphysiol.33.1039.

Abstract

The inward rectifier K channel in rabbit ventricular cells was studied by the patch-clamp method. Single channel currents were recorded in giga-sealed cell-attached patches with 150 mM K+ in the pipette. The slope conductance in the membrane potential range from -140 to -40 mV was 46.6 +/- 6.7 pS (mean +/- S.D., n = 16), and was reduced by decreasing [K+] in the pipette (20 or 50 mM). The channel was blocked by an application of Cs+ or Ba2+ (0.04-1 mM) in the pipette. Outwardly directed current, recorded with 50 mM K+ in the pipette, revealed the inward rectification of the single channel current. The probability of the channel being open was 0.33 +/- 0.05 (n = 10) at the resting potential (RP=-81.7 +/- 1.7 mV, n = 16) with 150 mM K+ in the pipette, and it decreased with hyperpolarization. The mean open time of the channel was 178 +/- 25 msec (n = 6) at RP. The closed time of the channel seemed to have two exponential components, with time constants of 11.0 +/- 2.0 msec and 1.92 +/- 0.52 sec (n = 6) at RP. The slower time constant was increased with hyperpolarization. The averaged patch current recorded upon hyperpolarizing pulses demonstrated a time-dependent current decay as expected from the single channel kinetics. The results indicated that the inward rectifier K+ current has time- and voltage-dependent kinetics.

摘要

采用膜片钳技术对兔心室肌细胞内向整流钾通道进行了研究。在微电极内液为150 mM K⁺的情况下,在形成千兆封接的细胞贴附式膜片上记录单通道电流。膜电位在-140至-40 mV范围内时,斜率电导为46.6±6.7 pS(平均值±标准差,n = 16),当降低微电极内液中的[K⁺](至20或50 mM)时,该电导降低。微电极内液中加入Cs⁺或Ba²⁺(0.04 - 1 mM)可阻断该通道。当微电极内液为50 mM K⁺时记录到的外向电流显示了单通道电流的内向整流特性。在微电极内液为150 mM K⁺的静息电位(RP = -81.7±1.7 mV,n = 16)下,通道开放概率为0.33±0.05(n = 10),且随着超极化而降低。在静息电位下,通道的平均开放时间为178±25毫秒(n = 6)。通道的关闭时间似乎有两个指数成分,在静息电位下时间常数分别为11.0±2.0毫秒和1.92±0.52秒(n = 6)。较慢的时间常数随着超极化而增加。超极化脉冲刺激下记录的平均膜片电流显示出时间依赖性电流衰减,这与单通道动力学预期一致。结果表明,内向整流钾电流具有时间和电压依赖性动力学特性。

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