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A rapidly activating and slowly inactivating potassium channel cloned from human heart. Functional analysis after stable mammalian cell culture expression

机译:从人心脏克隆的快速激活和缓慢失活的钾通道。哺乳动物细胞培养稳定表达后的功能分析

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摘要

The electrophysiological properties of HK2 (Kv1.5), a K+ channel cloned from human ventricle, were investigated after stable expression in a mouse Ltk- cell line. Cell lines that expressed HK2 mRNA displayed a current with delayed rectifier properties at 23 degrees C, while sham transfected cell lines showed neither specific HK2 mRNA hybridization nor voltage-activated currents under whole cell conditions. The expression of the HK2 current has been stable for over two years. The dependence of the reversal potential of this current on the external K+ concentration (55 mV/decade) confirmed K+ selectivity, and the tail envelope test was satisfied, indicating expression of a single population of K+ channels. The activation time course was fast and sigmoidal (time constants declined from 10 ms to < 2 ms between 0 and +60 mV). The midpoint and slope factor of the activation curve were Eh = -14 +/- 5 mV and k = 5.9 +/- 0.9 (n = 31), respectively. Slow partial inactivation was observed especially at large depolarizations (20 +/- 2% after 250 ms at +60 mV, n = 32), and was incomplete in 5 s (69 +/- 3%, n = 14). This slow inactivation appeared to be a genuine gating process and not due to K+ accumulation, because it was present regardless of the size of the current and was observed even with 140 mM external K+ concentration. Slow inactivation had a biexponential time course with largely voltage-independent time constants of approximately 240 and 2,700 ms between -10 and +60 mV. The voltage dependence of slow inactivation overlapped with that of activation: Eh = -25 +/- 4 mV and k = 3.7 +/- 0.7 (n = 14). The fully activated current-voltage relationship displayed outward rectification in 4 mM external K+ concentration, but was more linear at higher external K+ concentrations, changes that could be explained in part on the basis of constant field (Goldman-Hodgkin-Katz) rectification. Activation and inactivation kinetics displayed a marked temperature dependence, resulting in faster activation and enhanced inactivation at higher temperature. The current was sensitive to low concentrations of 4- aminopyridine, but relatively insensitive to external TEA and to high concentrations of dendrotoxin. The expressed current did not resemble either the rapid or the slow components of delayed rectification described in guinea pig myocytes. However, this channel has many similarities to the rapidly activating delayed rectifying currents described in adult rat atrial and neonatal canine epicardial myocytes.(ABSTRACT TRUNCATED AT 400 WORDS)
机译:在小鼠Ltk细胞系中稳定表达后,研究了HK2(Kv1.5)(从人心室克隆的K +通道)的电生理特性。表达HK2 mRNA的细胞系在23摄氏度时显示出具有延迟整流特性的电流,而假转染的细胞系在整个细胞条件下均未显示特异性HK2 mRNA杂交或电压激活电流。 HK2电流的表达已经稳定了两年以上。该电流的反向电位对外部K +浓度(55 mV /十倍)的依赖性证实了K +的选择性,并且满足了尾部包络试验,表明单个K +通道群的表达。激活时间过程快速且呈S形(时间常数从10毫秒下降到<2毫秒,介于0和+60 mV之间)。激活曲线的中点和斜率因子分别为Eh = -14 +/- 5 mV和k = 5.9 +/- 0.9(n = 31)。观察到缓慢的部分失活,特别是在较大的去极化时(+60 mV在250 ms后20 +/- 2%,n = 32),在5 s内不完全失活(69 +/- 3%,n = 14)。这种缓慢的失活似乎是一个真正的门控过程,而不是由于K +的积累,因为它的存在与电流大小无关,即使在140 mM的外部K +浓度下也可以观察到。慢速灭活具有双指数的时间过程,在-10至+60 mV之间,电压无关的时间常数在很大程度上与电压无关,大约为240至2700 ms。慢速灭活与电压的依赖性与激活重叠:Eh = -25 +/- 4 mV,k = 3.7 +/- 0.7(n = 14)。完全激活的电流-电压关系在4 mM外部K +浓度下显示出向外整流,但在较高外部K +浓度下呈线性,这种变化可以部分根据恒定电场(Goldman-Hodgkin-Katz)整流来解释。活化和失活动力学表现出明显的温度依赖性,从而导致更快的活化和更高温度下的失活增强。该电流对低浓度的4-氨基吡啶敏感,但对外部TEA和高浓度树毒素相对不敏感。所表达的电流与豚鼠心肌细胞中描述的延迟整流的快速或缓慢成分都不相似。但是,该通道与成年大鼠心房和新生儿犬心外膜心肌细胞中描述的快速激活的延迟整流电流有很多相似之处(摘要截短了400字)。

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