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cAMP 以依赖于状态的方式与封闭的、失活的和开放的海胆 HCN 通道结合。

cAMP binds to closed, inactivated, and open sea urchin HCN channels in a state-dependent manner.

机构信息

Department of Physiology and Biophysics, School of Medicine, Virginia Commonwealth University, Richmond, VA.

Department of Physiology and Biophysics, School of Medicine, Virginia Commonwealth University, Richmond, VA

出版信息

J Gen Physiol. 2019 Feb 4;151(2):200-213. doi: 10.1085/jgp.201812019. Epub 2018 Dec 12.

Abstract

Hyperpolarization-activated cyclic-nucleotide-modulated (HCN) channels are nonselective cation channels that regulate electrical activity in the heart and brain. Previous studies of mouse HCN2 (mHCN2) channels have shown that cAMP binds preferentially to and stabilizes these channels in the open state-a simple but elegant implementation of ligand-dependent gating. Distinct from mammalian isoforms, the sea urchin (spHCN) channel exhibits strong voltage-dependent inactivation in the absence of cAMP. Here, using fluorescently labeled cAMP molecules as a marker for cAMP binding, we report that the inactivated spHCN channel displays reduced cAMP binding compared with the closed channel. The reduction in cAMP binding is a voltage-dependent process but proceeds at a much slower rate than the movement of the voltage sensor. A single point mutation in the last transmembrane domain near the channel's gate, F459L, abolishes inactivation and concurrently reverses the response to hyperpolarizing voltage steps from a decrease to an increase in cAMP binding. ZD7288, an open channel blocker that interacts with a region close to the activation/inactivation gate, dampens the reduction of cAMP binding to inactivated spHCN channels. In addition, compared with closed and "locked" closed channels, increased cAMP binding is observed in channels purposely locked in the open state upon hyperpolarization. Thus, the order of cAMP-binding affinity, measured by the fluorescence signal from labeled cAMP, ranges from high in the open state to intermediate in the closed state to low in the inactivated state. Our work on spHCN channels demonstrates intricate state-dependent communications between the gate and ligand-binding domain and provides new mechanistic insight into channel inactivation/desensitization.

摘要

超极化激活环核苷酸调节(HCN)通道是非选择性阳离子通道,调节心脏和大脑的电活动。先前对小鼠 HCN2(mHCN2)通道的研究表明,cAMP 优先结合并稳定这些通道处于开放状态——这是一种简单但优雅的配体依赖性门控实现方式。与哺乳动物同工型不同,海胆(spHCN)通道在没有 cAMP 的情况下表现出强烈的电压依赖性失活。在这里,我们使用荧光标记的 cAMP 分子作为 cAMP 结合的标志物,报告失活的 spHCN 通道与关闭的通道相比,cAMP 结合减少。这种 cAMP 结合的减少是一个电压依赖性的过程,但比电压传感器的运动速度慢得多。在靠近通道门的最后一个跨膜域中的单个点突变 F459L,消除了失活并同时将对超极化电压步的反应从 cAMP 结合减少转变为增加。ZD7288 是一种开放通道阻滞剂,与靠近激活/失活门的区域相互作用,可抑制失活的 spHCN 通道中 cAMP 结合的减少。此外,与关闭和“锁定”关闭的通道相比,在超极化时故意锁定在打开状态的通道中观察到 cAMP 结合增加。因此,通过标记的 cAMP 的荧光信号测量的 cAMP 结合亲和力的顺序,从打开状态的高到关闭状态的中间到失活状态的低。我们对 spHCN 通道的研究表明,门和配体结合域之间存在复杂的状态依赖性通讯,并为通道失活/脱敏提供了新的机制见解。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/e1ff/6363418/a60dbb7b6c33/JGP_201812019_Fig1.jpg

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