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Differential polyamine sensitivity in inwardly rectifying Kir2 potassium channels

机译:内向整流Kir2钾离子通道对多胺的敏感性不同

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摘要

Recent studies have shown that Kir2 channels display differential sensitivity to intracellular polyamines, and have raised a number of questions about several properties of inward rectification important to the understanding of their physiological roles. In this study, we have carried out a detailed characterization of steady-state and kinetic properties of block of Kir2.1–3 channels by spermine. High-resolution recordings from outside-out patches showed that in all Kir2 channels current–voltage relationships display a ‘crossover’ effect upon change in extracellular K+. Experiments at different concentrations of spermine allowed for the characterization of two distinct shallow components of rectification, with the voltages for half-block negative (V11/2) and positive (V21/2) to the voltage of half-block for the major steep component of rectification (V01/2). While V11/2 and V21/2 voltages differ significantly between Kir2 channels, they were coupled to each other according to the equation V11/2−V21/2= constant, strongly suggesting that similar structures may underlie both components. In Kir2.3 channels, the V21/2 was ∼50 mV positive to V01/2, leading to a pattern of outward currents distinct from that of Kir2.1 and Kir2.2 channels. The effective valency of spermine block (Z0) was highest in Kir2.2 channels while the valencies in Kir2.1 and Kir2.3 channels were not significantly different. The voltage dependence of spermine unblock was similar in all Kir2 channels, but the rates of unblock were ∼7-fold and ∼16-fold slower in Kir2.3 channels than those in Kir2.1 and Kir2.2 when measured at high and physiological extracellular K+, respectively. In all Kir2 channels, the instantaneous phase of activation was present. The instantaneous phase was difficult to resolve at high extracellular K+ but it became evident and accounted for nearly 30–50% of the total current when recorded at physiological extracellular K+. In conclusion, the data are consistent with the universal mechanism of rectification in Kir2 channels, but also point to significant, and physiologically important, quantitative differences between Kir2 isoforms.
机译:最近的研究表明,Kir2通道对细胞内的多胺表现出不同的敏感性,并且引起了一些有关内向整流特性的问题,这些特性对理解其生理作用很重要。在这项研究中,我们对精胺对Kir2.1-3通道阻滞的稳态和动力学性质进行了详细的表征。从外而上的补丁的高分辨率记录表明,在所有Kir2通道中,电流-电压关系在细胞外K + 变化时显示出“交叉”效应。在不同浓度的精胺上进行的实验可以表征两个不同的精馏浅层成分,分别具有半阻性负电压(V 1 1/2)和正电压(V 2 1/2)至整流的主要陡峭分量(V 0 1/2)的一半电压。尽管Kir2通道之间的V 1 1/2和V 2 1/2电压存在显着差异,但它们根据等式V 1 耦合。 sup> 1 / 2-V 2 1/2 =常数,强烈表明相似的结构可能是这两个成分的基础。在Kir2.3通道中,V 2 1/2对V 0 1/2呈正值〜50 mV,从而导致与Kir2不同的向外电流模式.1和Kir2.2频道。在Kir2.2通道中,精胺阻滞(Z0)的有效价最高,而在Kir2.1和Kir2.3通道中,有效价无明显差异。在所有Kir2通道上,精胺解阻的电压依赖性相似,但在高和生理条件下测量时,Kir2.3通道的解阻速率分别比Kir2.1和Kir2.2慢约7倍和约16倍细胞外K + 。在所有Kir2通道中,都存在激活的瞬时阶段。瞬时相在高细胞外K + 时很难分辨,但是当在生理细胞外K + 记录时,瞬时相变得很明显,占总电流的近30–50%。总之,这些数据与Kir2通道中的普遍整流机制一致,而且还指出了Kir2同工型之间存在显着的,生理上重要的定量差异。

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