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Low-affinity spermine block mediating outward currents through Kir2.1 and Kir2.2 inward rectifier potassium channels

机译:低亲和力精胺阻滞剂通过Kir2.1和Kir2.2内向整流钾通道介导外向电流

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摘要

The outward component of the strong inward rectifier K+ current (IKir) plays a pivotal role in polarizing the membranes of excitable and non-excitable cells and is regulated by voltage-dependent channel block by internal cations. Using the Kir2.1 channel, we previously showed that a small fraction of the conductance susceptible only to a low-affinity mode of block likely carries a large portion of the outward current. To further examine the relevance of the low-affinity block to outward IKir and to explore its molecular mechanism, we studied the block of the Kir2.1 and Kir2.2 channels by spermine, which is the principal Kir2 channel blocker. Current–voltage relations of outward Kir2.2 currents showed a peak, a plateau and two peaks in the presence of 10, 1 and 0.1 μm spermine, respectively, which was explained by the presence of two conductances that differ in their susceptibility to spermine block. When the current–voltage relations showed one peak, like those of native IKir, outward Kir2.2 currents were mediated mostly by the conductance susceptible to the low-affinity block. They also flowed in a narrower range than the corresponding Kir2.1 currents, because of 3- to 4-fold greater susceptibility to the low-affinity block than in Kir2.1. Reducing external [K+] shifted the voltage dependences of both the high- and low-affinity block of Kir2.1 in parallel with the shift in the reversal potential, confirming the importance of the low-affinity block in mediating outward IKir. When Kir2.1 mutants known to have reduced sensitivity to internal blockers were examined, the D172N mutation in the transmembrane pore region made almost all of the conductance susceptible only to low-affinity block, while the E224G mutation in the cytoplasmic pore region reduced the sensitivity to low-affinity block without markedly altering that to the high-affinity block or the high/low conductance ratio. The effects of these mutations support the hypothesis that Kir2 channels exist in two states having different susceptibilities to internal cationic blockers.
机译:强向内整流器K + 电流(IKir)的外向分量在极化可激发和不可激发细胞的膜时起关键作用,并受内部阳离子的电压依赖性通道阻滞的调节。使用Kir2.1通道,我们先前表明,仅对低亲和性模式敏感的电导的一小部分可能携带很大一部分外向电流。为了进一步检查低亲和力嵌段与向外的IKir的相关性并探讨其分子机制,我们通过精胺研究了Kir2.1和Kir2.2通道的阻断,精胺是主要的Kir2通道阻断剂。向外的Kir2.2电流的电流-电压关系在存在10、1和0.1μm精胺的情况下分别显示出一个峰,一个平稳峰和两个峰,这可以通过存在两种不同的电导来解释,这些电导对精胺阻滞的敏感性不同。当电流-电压关系显示一个峰值时(如本机IKir的峰值),向外的Kir2.2电流主要由对低亲和力阻滞敏感的电导来介导。它们的流动范围也比相应的Kir2.1电流窄,这是因为对低亲和力区块的敏感性比Kir2.1高3至4倍。降低外部[K + ]会同时改变Kir2.1高亲和力模块和低亲和力模块的电压依赖性,以及反向电位的变化,从而证实了低亲和力模块的重要性调解向外的IKir。当检查已知对内部阻滞剂敏感性降低的Kir2.1突变体时,跨膜孔区域的D172N突变使几乎所有电导仅对低亲和力阻滞敏感,而胞质孔区域的E224G突变降低了敏感性至低亲和力块,而不会明显改变至高亲和力块或高/低电导率。这些突变的影响支持以下假设:Kir2通道以两种状态存在,对内部阳离子阻滞剂的敏感性不同。

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