首页> 美国卫生研究院文献>The Journal of General Physiology >Distinct Populations of HCN Pacemaker Channels Produce Voltage-dependent and Voltage-independent Currents
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Distinct Populations of HCN Pacemaker Channels Produce Voltage-dependent and Voltage-independent Currents

机译:HCN起搏器通道的不同种群产生电压相关和电压独立电流

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摘要

Hyperpolarization-activated HCN pacemaker channels are critical for the generation of spontaneous activity and the regulation of excitability in the heart and in many types of neurons. These channels produce both a voltage-dependent current (Ih) and a voltage-independent current (Iinst or VIC). In this study, we explored the molecular basis of the voltage-independent current. We found that for the spHCN isoform, VIC averaged ∼4% of the maximum HCN conductance that could be activated by hyperpolarization. Cyclic AMP increased the voltage-independent current in spHCN to ∼8% of maximum. In HCN2, VIC was ∼2% of the maximal current, and was little affected by cAMP. VIC in both spHCN and HCN2 was blocked rapidly both by ZD7288 (an HCN channel blocker that is thought to bind in the conduction pore) and by application of Cd2+ to channels containing an introduced cysteine in the pore (spHCN-464C or HCN2-436C). These results suggest that VIC flows through the main conduction pathway, down the central axis of the protein. We suspected that VIC simply represented a nonzero limiting open probability for HCN channels at positive voltages. Surprisingly, we found instead that the spHCN channels carrying VIC were not in rapid equilibrium with the channels carrying the voltage-dependent current, because they could be blocked independently; a single application of blocker at a depolarized potential essentially eliminated VIC with little change in Ih. Thus, VIC appears to be produced by a distinct population of HCN channels. This voltage-independent current could contribute significantly to the role of HCN channels in neurons and myocytes; VIC flowing through the channels at physiological potentials would tend to promote excitability by accelerating both depolarization and repolarization.
机译:超极化激活的HCN起搏器通道对于自发活动的产生以及心脏和许多类型神经元的兴奋性调节至关重要。这些通道既产生与电压有关的电流(Ih),也产生与电压无关的电流(Iinst或VIC)。在这项研究中,我们探索了电压无关电流的分子基础。我们发现,对于spHCN亚型,VIC平均可被超极化激活的最大HCN电导的〜4%。循环AMP将spHCN中的电压无关电流增加到最大值的8%。在HCN2中,VIC约为最大电流的2%,几乎不受cAMP的影响。 spHCN和HCN2中的VIC都被ZD7288(一种被认为结合在传导孔中的HCN通道阻滞剂)和向孔中含有半胱氨酸的通道施加Cd 2 + 迅速阻断(spHCN-464C或HCN2-436C)。这些结果表明,VIC流经蛋白质中心轴的主要传导途径。我们怀疑,VIC仅仅代表了正电压下HCN通道的非零极限打开概率。出乎意料的是,我们发现载有VIC的spHCN通道与载有电压相关电流的通道不是快速平衡的,因为它们可以被独立地阻塞。在去极化电位上单次使用阻滞剂基本上消除了VIC,而Ih几乎没有变化。因此,VIC似乎是由不同数量的HCN渠道产生的。这种与电压无关的电流可以显着促进HCN通道在神经元和肌细胞中的作用。在生理电位下流经通道的VIC将通过加速去极化和复极化来促进兴奋性。

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