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spHCN通道中电压传感器与激活门之间的动力学关系。

Kinetic relationship between the voltage sensor and the activation gate in spHCN channels.

作者信息

Bruening-Wright Andrew, Elinder Fredrik, Larsson H Peter

机构信息

Neurological Sciences Institute, Oregon Health and Science University, Beaverton, OR 97006, USA.

出版信息

J Gen Physiol. 2007 Jul;130(1):71-81. doi: 10.1085/jgp.200709769.

Abstract

Hyperpolarization-activated cyclic nucleotide-gated (HCN) channels are activated by membrane hyperpolarizations that cause an inward movement of the positive charges in the fourth transmembrane domain (S4), which triggers channel opening. The mechanism of how the motion of S4 charges triggers channel opening is unknown. Here, we used voltage clamp fluorometry (VCF) to detect S4 conformational changes and to correlate these to the different activation steps in spHCN channels. We show that S4 undergoes two distinct conformational changes during voltage activation. Analysis of the fluorescence signals suggests that the N-terminal region of S4 undergoes conformational changes during a previously characterized mode shift in HCN channel voltage dependence, while a more C-terminal region undergoes an additional conformational change during gating charge movements. We fit our fluorescence and ionic current data to a previously proposed 10-state allosteric model for HCN channels. Our results are not compatible with a fast S4 motion and rate-limiting channel opening. Instead, our data and modeling suggest that spHCN channels open after only two S4s have moved and that S4 motion is rate limiting during voltage activation of spHCN channels.

摘要

超极化激活的环核苷酸门控(HCN)通道由膜超极化激活,膜超极化导致第四跨膜结构域(S4)中的正电荷向内移动,从而触发通道开放。S4电荷运动如何触发通道开放的机制尚不清楚。在这里,我们使用电压钳荧光法(VCF)来检测S4构象变化,并将这些变化与spHCN通道的不同激活步骤相关联。我们表明,S4在电压激活过程中经历了两种不同的构象变化。对荧光信号的分析表明,S4的N端区域在HCN通道电压依赖性的先前表征的模式转变期间经历构象变化,而更C端区域在门控电荷运动期间经历额外的构象变化。我们将我们的荧光和离子电流数据拟合到先前提出的HCN通道的10态变构模型。我们的结果与快速的S4运动和限速通道开放不兼容。相反,我们的数据和模型表明,spHCN通道仅在两个S4移动后打开,并且S4运动在spHCN通道的电压激活过程中是限速的。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/63f2/2154369/5a9dd58f2c2d/jgp1300071f01.jpg

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