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ML277 调节 KCNQ1 单通道的幅度和动力学,受电压传感器状态的影响。

ML277 regulates KCNQ1 single-channel amplitudes and kinetics, modified by voltage sensor state.

机构信息

Department of Anesthesiology, Pharmacology and Therapeutics, University of British Columbia, Vancouver, Canada.

出版信息

J Gen Physiol. 2021 Dec 6;153(12). doi: 10.1085/jgp.202112969. Epub 2021 Oct 12.

Abstract

KCNQ1 is a pore-forming K+ channel subunit critically important to cardiac repolarization at high heart rates. (2R)-N-[4-(4-methoxyphenyl)-2-thiazolyl]-1-[(4-methylphenyl)sulfonyl]-2 piperidinecarboxamide, or ML277, is an activator of this channel that rescues function of pathophysiologically important mutant channel complexes in human induced pluripotent stem cell-derived cardiomyocytes, and that therefore may have therapeutic potential. Here we extend our understanding of ML277 actions through cell-attached single-channel recordings of wild-type and mutant KCNQ1 channels with voltage sensor domains fixed in resting, intermediate, and activated states. ML277 has profound effects on KCNQ1 single-channel kinetics, eliminating the flickering nature of the openings, converting them to discrete opening bursts, and increasing their amplitudes approximately threefold. KCNQ1 single-channel behavior after ML277 treatment most resembles IO state-locked channels (E160R/R231E) rather than AO state channels (E160R/R237E), suggesting that at least during ML277 treatment, KCNQ1 does not frequently visit the AO state. Introduction of KCNE1 subunits reduces the effectiveness of ML277, but some enhancement of single-channel openings is still observed.

摘要

KCNQ1 是一种孔形成钾离子通道亚基,对高速率心脏复极至关重要。(2R)-N-[4-(4-甲氧基苯基)-2-噻唑基]-1-[(4-甲基苯基)磺酰基]-2 哌啶甲酰胺,或 ML277,是该通道的激活剂,可挽救人诱导多能干细胞衍生心肌细胞中病理生理重要突变通道复合物的功能,因此可能具有治疗潜力。在这里,我们通过固定在静止、中间和激活状态下的电压传感器域的野生型和突变 KCNQ1 通道的细胞附着单通道记录,扩展了对 ML277 作用的理解。ML277 对 KCNQ1 单通道动力学有深远影响,消除了开口的闪烁性质,将其转换为离散的开口爆发,并将其幅度增加约三倍。ML277 处理后 KCNQ1 单通道行为最类似于 IO 状态锁定通道(E160R/R231E)而不是 AO 状态通道(E160R/R237E),这表明至少在 ML277 处理期间,KCNQ1 不会频繁地进入 AO 状态。引入 KCNE1 亚基会降低 ML277 的效果,但仍观察到单通道开口的一些增强。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/81d0/8515649/907c9e9ad832/JGP_202112969_Fig1.jpg

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