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Extracellular potassium effects are conserved within the rat erg K+ channel family

机译:大鼠erg K +通道家族中细胞外钾的影响得以保留

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摘要

The biophysical properties of native cardiac erg1 and recombinant HERG1 channels have been shown to be influenced by the extracellular K+ concentration ([K+]o). The erg1 conductance, for example, increases dramatically with a rise in [K+]o. In the brain, where local [K+]o can change considerably with the extent of physiological and pathophysiological neuronal activity, all three erg channel subunits are expressed. We have now investigated and compared the effects of an increase in [K+]o from 2 to 10 mm on the three rat erg channels heterologously expressed in CHO cells. Upon increasing [K+]o, the voltage dependence of activation was shifted to more negative potentials for erg1 (ΔV0.5 =−4.0 ± 1.1 mV, n = 28) and erg3 (ΔV0.5 =−8.4 ± 1.2 mV, n = 25), and was almost unchanged for erg2 (ΔV0.5 =−2.0 ± 1.3 mV, n = 6). For all three erg channels, activation kinetics were independent of [K+]o, but the slowing of inactivation by increased [K+]o was even more pronounced for erg2 and erg3 than for erg1. In addition, with increased [K+]o, all three erg channels exhibited significantly slower time courses of recovery from inactivation and of deactivation. Whole-cell erg-mediated conductance was determined at the end of 4 s depolarizing pulses as well as with 1 s voltage ramps starting from the fully activated state. The rise in [K+]o resulted in increased conductance values for all three erg channels which were more pronounced for erg2 (factor 3–4) than for erg1 (factor 2.5–3) and erg3 (factor 2–2.5). The data demonstrate that most [K+]o-dependent changes in the biophysical properties are well conserved within the erg K+ channel family, despite gradual differences in the magnitude of the effects.
机译:已显示天然心脏erg1和重组HERG1通道的生物物理特性受细胞外K + 浓度([K + ] o)的影响。例如,随着[K + ] o的增加,erg1电导急剧增加。在大脑中,局部[K + ] o随生理和病理生理神经元活动程度的变化而显着变化,所有三个erg通道亚基均被表达。现在,我们已经研究并比较了[K + ] o从2 mm增加到10 mm对在CHO细胞中异源表达的三个大鼠erg通道的影响。随着[K + ] o的增加,激活电压的依赖性变为erg1(ΔV0.5= -4.0±1.1 mV,n = 28)和erg3(ΔV0.5= -8.4±1.2 mV,n = 25),对于erg2几乎不变(ΔV0.5= -2.0±1.3 mV,n = 6)。对于所有三个erg通道,激活动力学与[K + ] o无关,但是对于erg2和erg3比erg1好。此外,随着[K + ] o的增加,所有三个erg通道的失活和失活恢复时间均显着降低。从4 s去极化脉冲的末尾以及从完全激活状态开始的1 s电压斜坡确定全细胞erg介导的电导。 [K + ] o的增加导致所有三个erg通道的电导值增加,其中erg2(因子3-4)比erg1(因子2.5-3)和erg3(因子)更明显2–2.5)。数据表明,尽管erg K + 通道家族中的大多数[K + ] o依赖的生物物理特性变化都得到了很好的保守,尽管效果。

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