Department of Pharmacology, Alberta Diabetes Institute, University of Alberta, Edmonton, Canada.
School of Dentistry, Faculty of Medicine and Dentistry, University of Alberta, School of Dentistry, Edmonton Clinic Health Academy (ECHA), Edmonton, Canada.
Elife. 2020 Nov 9;9:e54916. doi: 10.7554/eLife.54916.
Many voltage-dependent ion channels are regulated by accessory proteins. We recently reported powerful regulation of Kv1.2 potassium channels by the amino acid transporter Slc7a5. In this study, we report that Kv1.1 channels are also regulated by Slc7a5, albeit with different functional outcomes. In heterologous expression systems, Kv1.1 exhibits prominent current enhancement ('disinhibition') with holding potentials more negative than -120 mV. Knockdown of endogenous Slc7a5 leads to larger Kv1.1 currents and strongly attenuates the disinhibition effect, suggesting that Slc7a5 regulation of Kv1.1 involves channel inhibition that can be reversed by supraphysiological hyperpolarizing voltages. We investigated chimeric combinations of Kv1.1 and Kv1.2, demonstrating that exchange of the voltage-sensing domain controls the sensitivity and response to Slc7a5, and localize a specific position in S1 with prominent effects on Slc7a5 sensitivity. Overall, our study highlights multiple Slc7a5-sensitive Kv1 subunits, and identifies the voltage-sensing domain as a determinant of Slc7a5 modulation of Kv1 channels.
许多电压门控离子通道受辅助蛋白调节。我们最近报道了氨基酸转运蛋白 Slc7a5 对 Kv1.2 钾通道的强大调节作用。在这项研究中,我们报告说 Kv1.1 通道也受 Slc7a5 调节,尽管功能结果不同。在异源表达系统中,Kv1.1 在保持电位比-120 mV 更负时表现出明显的电流增强(“去抑制”)。内源性 Slc7a5 的敲低导致更大的 Kv1.1 电流,并强烈减弱去抑制效应,表明 Slc7a5 对 Kv1.1 的调节涉及可被超生理超极化电压逆转的通道抑制。我们研究了 Kv1.1 和 Kv1.2 的嵌合组合,证明电压感应域的交换控制对 Slc7a5 的敏感性和反应,并且在 S1 中定位了一个对 Slc7a5 敏感性有显著影响的特定位置。总体而言,我们的研究强调了多个 Slc7a5 敏感的 Kv1 亚基,并确定了电压感应域是 Slc7a5 调节 Kv1 通道的决定因素。