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共价化学遗传学钾通道激活剂的开发。

Development of covalent chemogenetic K channel activators.

作者信息

Deal Parker E, Lee Haerim, Mondal Abhisek, Lolicato Marco, de Mendonca Philipe Ribeiro Furtado, Black Holly, El-Hilali Xochina, Bryant Clifford, Isacoff Ehud Y, Renslo Adam R, Minor Daniel L

机构信息

Cardiovascular Research Institute, University of California, San Francisco, California 93858-2330 USA.

Department of Pharmaceutical Chemistry, University of California, San Francisco, California 93858-2330 USA.

出版信息

bioRxiv. 2023 Oct 18:2023.10.15.561774. doi: 10.1101/2023.10.15.561774.

Abstract

K potassium channels regulate excitability by affecting cellular resting membrane potential in the brain, cardiovascular system, immune cells, and sensory organs. Despite their important roles in anesthesia, arrhythmia, pain, hypertension, sleep, and migraine, the ability to control K function remains limited. Here, we describe a chemogenetic strategy termed CATKLAMP (Covalent Activation of TREK family K channels to cLAmp Membrane Potential) that leverages the discovery of a site in the K modulator pocket that reacts with electrophile-bearing derivatives of a TREK subfamily small molecule activator, ML335, to activate the channel irreversibly. We show that the CATKLAMP strategy can be used to probe fundamental aspects of K function, as a switch to silence neuronal firing, and is applicable to all TREK subfamily members. Together, our findings exemplify a new means to alter K channel activity that should facilitate studies both molecular and systems level studies of K function and enable the search for new K modulators.

摘要

钾离子通道通过影响大脑、心血管系统、免疫细胞和感觉器官中的细胞静息膜电位来调节兴奋性。尽管它们在麻醉、心律失常、疼痛、高血压、睡眠和偏头痛中发挥着重要作用,但控制钾离子通道功能的能力仍然有限。在此,我们描述了一种化学遗传学策略,称为CATKLAMP(通过共价激活TREK家族钾离子通道来钳制膜电位),该策略利用了在钾离子通道调节剂口袋中发现的一个位点,该位点与TREK亚家族小分子激活剂ML335的亲电衍生物发生反应,从而不可逆地激活通道。我们表明,CATKLAMP策略可用于探究钾离子通道功能的基本方面,作为一种沉默神经元放电的开关,并且适用于所有TREK亚家族成员。总之,我们的研究结果例证了一种改变钾离子通道活性的新方法,这应该有助于在分子和系统水平上研究钾离子通道功能,并有助于寻找新的钾离子通道调节剂。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/6896/10614804/1d5fc410d4ff/nihpp-2023.10.15.561774v1-f0001.jpg

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