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靶向最终电压传感器转变的静电钾通道 opener。

An electrostatic potassium channel opener targeting the final voltage sensor transition.

机构信息

Department of Clinical and Experimental Medicine, Division of Cell Biology, Linköping University, Sweden.

出版信息

J Gen Physiol. 2011 Jun;137(6):563-77. doi: 10.1085/jgp.201110599.

Abstract

Free polyunsaturated fatty acids (PUFAs) modulate the voltage dependence of voltage-gated ion channels. As an important consequence thereof, PUFAs can suppress epileptic seizures and cardiac arrhythmia. However, molecular details for the interaction between PUFA and ion channels are not well understood. In this study, we have localized the site of action for PUFAs on the voltage-gated Shaker K channel by introducing positive charges on the channel surface, which potentiated the PUFA effect. Furthermore, we found that PUFA mainly affects the final voltage sensor movement, which is closely linked to channel opening, and that specific charges at the extracellular end of the voltage sensor are critical for the PUFA effect. Because different voltage-gated K channels have different charge profiles, this implies channel-specific PUFA effects. The identified site and the pharmacological mechanism will potentially be very useful in future drug design of small-molecule compounds specifically targeting neuronal and cardiac excitability.

摘要

游离多不饱和脂肪酸(PUFAs)调节电压门控离子通道的电压依赖性。因此,PUFAs 可以抑制癫痫发作和心律失常。然而,PUFA 与离子通道相互作用的分子细节尚不清楚。在这项研究中,我们通过在通道表面引入正电荷,将 PUFAs 的作用部位定位在电压门控 Shaker K 通道上,从而增强了 PUFAs 的作用。此外,我们发现 PUFAs 主要影响与通道开放密切相关的最后电压传感器运动,而电压传感器胞外端的特定电荷对于 PUFAs 的作用至关重要。因为不同的电压门控 K 通道具有不同的电荷分布,这意味着 PUFAs 具有通道特异性作用。所确定的作用部位和药理学机制在未来针对神经元和心脏兴奋性的小分子化合物的药物设计中可能具有非常重要的作用。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/992e/3105513/06b5f8314278/JGP_201110599_RGB_Fig1.jpg

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