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通过机电耦联使 Kv2.1 通道失活。

Inactivation of the Kv2.1 channel through electromechanical coupling.

机构信息

Molecular Physiology and Biophysics Section, Porter Neuroscience Research Center, National Institute of Neurological Disorders and Stroke, National Institutes of Health, Bethesda, MD, USA.

Department of Biology, Johns Hopkins University, Baltimore, MD, USA.

出版信息

Nature. 2023 Oct;622(7982):410-417. doi: 10.1038/s41586-023-06582-8. Epub 2023 Sep 27.

Abstract

The Kv2.1 voltage-activated potassium (Kv) channel is a prominent delayed-rectifier Kv channel in the mammalian central nervous system, where its mechanisms of activation and inactivation are critical for regulating intrinsic neuronal excitability. Here we present structures of the Kv2.1 channel in a lipid environment using cryo-electron microscopy to provide a framework for exploring its functional mechanisms and how mutations causing epileptic encephalopathies alter channel activity. By studying a series of disease-causing mutations, we identified one that illuminates a hydrophobic coupling nexus near the internal end of the pore that is critical for inactivation. Both functional and structural studies reveal that inactivation in Kv2.1 results from dynamic alterations in electromechanical coupling to reposition pore-lining S6 helices and close the internal pore. Consideration of these findings along with available structures for other Kv channels, as well as voltage-activated sodium and calcium channels, suggests that related mechanisms of inactivation are conserved in voltage-activated cation channels and likely to be engaged by widely used therapeutics to achieve state-dependent regulation of channel activity.

摘要

Kv2.1 电压激活钾 (Kv) 通道是哺乳动物中枢神经系统中一种重要的延迟整流 Kv 通道,其激活和失活机制对于调节内在神经元兴奋性至关重要。在这里,我们使用冷冻电镜在脂质环境中呈现 Kv2.1 通道的结构,为探索其功能机制以及导致癫痫性脑病的突变如何改变通道活性提供了一个框架。通过研究一系列致病突变,我们确定了一个突变,阐明了位于孔内端附近的疏水性偶联连接体,对于失活至关重要。功能和结构研究均表明,Kv2.1 的失活是由于电机械偶联的动态变化,从而重新定位孔衬 S6 螺旋并关闭内部孔。考虑到这些发现以及其他 Kv 通道、电压激活的钠和钙通道的现有结构,表明失活的相关机制在电压激活的阳离子通道中是保守的,并且可能被广泛使用的治疗药物用于实现通道活性的状态依赖性调节。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/79cd/10567553/9741077a5064/41586_2023_6582_Fig1_HTML.jpg

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