Biaryl sulfonamide motifs up- or down-regulate ion channel activity by activating voltage sensors.

The Journal of General Physiology Pub Date : 2018-08-06 Epub Date: 2018-07-12 DOI:10.1085/jgp.201711942
Sara I Liin, Per-Eric Lund, Johan E Larsson, Johan Brask, Björn Wallner, Fredrik Elinder
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引用次数: 8

Abstract

Voltage-gated ion channels are key molecules for the generation of cellular electrical excitability. Many pharmaceutical drugs target these channels by blocking their ion-conducting pore, but in many cases, channel-opening compounds would be more beneficial. Here, to search for new channel-opening compounds, we screen 18,000 compounds with high-throughput patch-clamp technology and find several potassium-channel openers that share a distinct biaryl-sulfonamide motif. Our data suggest that the negatively charged variants of these compounds bind to the top of the voltage-sensor domain, between transmembrane segments 3 and 4, to open the channel. Although we show here that biaryl-sulfonamide compounds open a potassium channel, they have also been reported to block sodium and calcium channels. However, because they inactivate voltage-gated sodium channels by promoting activation of one voltage sensor, we suggest that, despite different effects on the channel gates, the biaryl-sulfonamide motif is a general ion-channel activator motif. Because these compounds block action potential-generating sodium and calcium channels and open an action potential-dampening potassium channel, they should have a high propensity to reduce excitability. This opens up the possibility to build new excitability-reducing pharmaceutical drugs from the biaryl-sulfonamide scaffold.

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联芳基磺胺基序通过激活电压传感器来上调或下调离子通道活性。
电压门控离子通道是细胞电兴奋性产生的关键分子。许多药物通过阻断它们的离子传导孔来靶向这些通道,但在许多情况下,打开通道的化合物将更有益。在这里,为了寻找新的通道打开化合物,我们使用高通量膜片钳技术筛选了18,000种化合物,并发现了几种具有独特双芳基磺胺基序的钾通道打开剂。我们的数据表明,这些化合物的带负电荷的变体结合到电压传感器域的顶部,在跨膜段3和4之间,打开通道。虽然我们在这里展示了双芳基磺酰胺化合物打开钾通道,但也有报道称它们会阻断钠和钙通道。然而,由于它们通过促进一个电压传感器的激活来灭活电压门控钠通道,我们认为,尽管对通道门有不同的影响,双芳基磺胺基序是一个通用的离子通道激活剂基序。因为这些化合物阻断了产生动作电位的钠和钙通道,并打开了抑制动作电位的钾通道,它们应该有很高的降低兴奋性的倾向。这开启了从双芳基磺胺支架构建新的降低兴奋性药物的可能性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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