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Gating currents from a Kv3 subfamily potassium channel: charge movement and modification by BDS-II toxin

机译:来自Kv3亚科钾通道的门控电流:电荷移动和BDS-II毒素修饰

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摘要

Kv3 channels have a major role in determining neuronal excitability, and are characterized by ultra-rapid kinetics of gating and a high activation threshold. However, the gating currents, which occur as a result of positional changes of the charged elements in the channel structure during activation, are not well understood. Here we report a study of gating currents from wild-type Kv3.2b channels, expressed in human embryonic kidney (HEK) cells to facilitate high time-resolution recording. On-gating currents (Ig,on) had extremely rapid kinetics such that at +80 mV, the time constant for the decay of Ig,on was only ∼0.3 ms. Decay of Ig,on appeared mono-exponential at all potentials studied, and in support of this, the charge–voltage (Q–V) relationship was fitted with a single Boltzmann function, supporting the idea that only one charge system is required to account for the time course of Ig,on and the voltage dependence of Qon. The voltage (V½) for half movement of gating charge was −8.4 ± 4.0 mV (n = 6), which closely matches the voltage dependence of activation of Kv3.2b ionic currents reported before. Depolarizations to more positive potentials than 0 mV decreased the amplitude and slowed the decay of the off-gating currents (Ig,off), suggesting that a rate-limiting step in opening was present in Kv3 channels as in Shaker and other Kv channels. Return of charge was negatively shifted along the potential axis with a V½ of Qoff of −80.9 ± 0.8 mV (n = 3), which allowed ∼90% charge return upon repolarization to −100 mV. BDS-II toxin apparently reduced Ig,on, and greatly slowed the kinetics of Ig,on, while shifting the Q–V relationship in the depolarizing direction. However, the Q–V relationship remained well fitted by a single Boltzmann function. These data provide the first description of Kv3 gating currents and give further insight into the interaction of BDS toxins and Kv3 channels.
机译:Kv3通道在确定神经元兴奋性中起主要作用,其特征在于门控的超快速动力学和高激活阈值。然而,由于在激活期间由于沟道结构中的带电元件的位置变化而产生的选通电流未被很好地理解。在这里,我们报告了一项有关野生型Kv3.2b通道的门控电流的研究,该通道在人类胚胎肾脏(HEK)细胞中表达,以促进高时间分辨率的记录。导通电流(Ig,on)具有极快的动力学,因此在+80 mV时,Ig,on衰减的时间常数仅为〜0.3 ms。在所有研究的电势下,Ig,on的衰变均呈单指数,为此,电荷-电压(Q-V)关系配备了一个玻耳兹曼函数,从而支持了仅需一个电荷系统即可解决的想法。 Ig,on的时间过程和Qon的电压依赖性。门控电荷半移动的电压(V½)为-8.4±4.0 mV(n = 6),与先前报道的激活Kv3.2b离子电流的电压依赖性紧密匹配。去极化至比0 mV更高的正电势会降低幅度,并减慢截止门电流(Ig,off)的衰减,这表明与Shaker和其他Kv通道一样,Kv3通道中存在打开速度限制的步骤。电荷返回沿电势轴负移,Qoff的V½为−80.9±0.8 mV(n = 3),这使得复极化至−100 mV时约有90%的电荷返回。 BDS-II毒素明显降低了Ig,on,并大大减慢了Ig,on的动力学,同时使Q-V关系沿去极化方向移动。但是, Q–V 关系仍然可以通过单个玻耳兹曼函数很好地拟合。这些数据提供了Kv3门控电流的第一个描述,并进一步了解了BDS毒素和Kv3通道的相互作用。

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