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首页> 外文期刊>The Journal of general physiology >Divalent cation selectivity for external block of voltage-dependent Na+ channels prolonged by batrachotoxin. Zn2+ induces discrete substates in cardiac Na+ channels.
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Divalent cation selectivity for external block of voltage-dependent Na+ channels prolonged by batrachotoxin. Zn2+ induces discrete substates in cardiac Na+ channels.

机译:胆碱毒素延长了电压依赖性Na +通道外部阻滞的二价阳离子选择性。 Zn2 +在心脏Na +通道中诱导离散的亚状态。

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The mechanism of block of voltage-dependent Na+ channels by extracellular divalent cations was investigated in a quantitative comparison of two distinct Na+ channel subtypes incorporated into planar bilayers in the presence of batrachotoxin. External Ca2+ and other divalent cations induced a fast voltage-dependent block observed as a reduction in unitary current for tetrodotoxin-sensitive Na+ channels of rat skeletal muscle and tetrodotoxin-insensitive Na+ channels of canine heart ventricular muscle. Using a simple model of voltage-dependent binding to a single site, these two distinct Na+ channel subtypes exhibited virtually the same affinity and voltage dependence for fast block by Ca2+ and a number of other divalent cations. This group of divalent cations exhibited an affinity sequence of Co congruent to Ni greater than Mn greater than Ca greater than Mg greater than Sr greater than Ba, following an inverse correlation between binding affinity and ionic radius. The voltage dependence of fast Ca2+ block was essentially independent of CaCl2 concentration; however, at constant voltage the Ca2+ concentration dependence of fast block deviated from a Langmuir isotherm in the manner expected for an effect of negative surface charge. Titration curves for fast Ca2+ block were fit to a simplified model based on a single Ca2+ binding site and the Gouy-Chapman theory of surface charge. This model gave similar estimates of negative surface charge density in the vicinity of the Ca2+ blocking site for muscle and heart Na+ channels. In contrast to other divalent cations listed above, Cd2+ and Zn2+ are more potent blockers of heart Na+ channels than muscle Na+ channels. Cd2+ induced a fast, voltage-dependent block in both Na+ channel subtypes with a 46-fold higher affinity at 0 mV for heart (KB = 0.37 mM) vs. muscle (KB = 17 mM). Zn2+ induced a fast, voltage-dependent block of muscle Na+ channels with low affinity (KB = 7.5 mM at 0 mV). In contrast, micromolar Zn2+ induced brief closures of heart Na+ channels that were resolved as discrete substate events at the single-channel level with an apparent blocking affinity of KB = 0.067 mM at 0 mV, or 110-fold higher affinity for Zn2+ compared with the muscle channel. High-affinity block of the heart channel by Cd2+ and Zn2+ exhibited approximately the same voltage dependence (e-fold per 60 mV) as low affinity block of the muscle subtype (e-fold per 54 mV), suggesting that the block occurs at structurally analogous sites in the two Na+ channels.(ABSTRACT TRUNCATED AT 400 WORDS)
机译:通过定量比较在存在棒曲霉毒素的情况下并入平面双层中的两种不同的Na +通道亚型的定量比较,研究了胞外二价阳离子阻断电压依赖性Na +通道的机制。外部Ca2 +和其他二价阳离子诱导快速电压依赖性阻断,观察到大鼠骨骼肌对河豚毒素敏感的Na +通道和对犬心室肌对河豚毒素不敏感的Na +通道的单位电流减小。使用简单的电压依赖性结合到单个位点的模型,这两个不同的Na +通道亚型对Ca2 +和许多其他二价阳离子的快速阻断显示出几乎相同的亲和力和电压依赖性。这组二价阳离子在结合亲和力和离子半径之间呈负相关之后,表现出与Ni大于Mn大于Ca大于Mg大于Sr大于Ba相同的Co的亲和力序列。快速Ca2 +嵌段的电压依赖性基本上与CaCl2浓度无关。然而,在恒定电压下,快速嵌段的Ca2 +浓度依赖性以预期的负表面电荷效应的方式偏离了Langmuir等温线。快速Ca2 +阻滞剂的滴定曲线基于单个Ca2 +结合位点和表面电荷的Gouy-Chapman理论拟合到简化模型。该模型对肌肉和心脏Na +通道的Ca2 +阻滞位点附近的负表面电荷密度给出了类似的估计。与上面列出的其他二价阳离子相反,Cd2 +和Zn2 +比心脏Na +通道对心脏Na +通道的作用更强。 Cd2 +在两种Na +通道亚型中诱导了一种快速的电压依赖性阻滞,在0 mV时,心脏(KB = 0.37 mM)对肌肉(KB = 17 mM)的亲和力高46倍。 Zn2 +会以低亲和力(0 mV时KB = 7.5 mM)诱导快速的电压依赖性肌肉Na +通道阻滞。相比之下,微摩尔Zn2 +引起心脏Na +通道的短暂闭合,在单个通道水平上被解析为离散的亚状态事件,在0 mV时的表观阻断亲和力KB = 0.067 mM,或与Zn2 +相比对Zn2 +的亲和力高110倍。肌肉通道。 Cd2 +和Zn2 +对心脏通道的高亲和力阻滞与肌肉亚型的低亲和力阻滞(每54 mV阻滞)表现出大约相同的电压依赖性(每60 mV e倍),表明该阻滞发生在结构上两个Na +通道中的相似位点(摘要以400字截断)

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