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HCN起搏器通道调节及激动剂特异性的结构基础

Structural basis for modulation and agonist specificity of HCN pacemaker channels.

作者信息

Zagotta William N, Olivier Nelson B, Black Kevin D, Young Edgar C, Olson Rich, Gouaux Eric

机构信息

Department of Physiology and Biophysics, Howard Hughes Medical Institute, Box 357290, University of Washington School of Medicine, Seattle, Washington 98195-7290, USA.

出版信息

Nature. 2003 Sep 11;425(6954):200-5. doi: 10.1038/nature01922.

Abstract

The family of hyperpolarization-activated, cyclic nucleotide-modulated (HCN) channels are crucial for a range of electrical signalling, including cardiac and neuronal pacemaker activity, setting resting membrane electrical properties and dendritic integration. These nonselective cation channels, underlying the I(f), I(h) and I(q) currents of heart and nerve cells, are activated by membrane hyperpolarization and modulated by the binding of cyclic nucleotides such as cAMP and cGMP. The cAMP-mediated enhancement of channel activity is largely responsible for the increase in heart rate caused by beta-adrenergic agonists. Here we have investigated the mechanism underlying this modulation by studying a carboxy-terminal fragment of HCN2 containing the cyclic nucleotide-binding domain (CNBD) and the C-linker region that connects the CNBD to the pore. X-ray crystallographic structures of this C-terminal fragment bound to cAMP or cGMP, together with equilibrium sedimentation analysis, identify a tetramerization domain and the mechanism for cyclic nucleotide specificity, and suggest a model for ligand-dependent channel modulation. On the basis of amino acid sequence similarity to HCN channels, the cyclic nucleotide-gated, and eag- and KAT1-related families of channels are probably related to HCN channels in structure and mechanism.

摘要

超极化激活的环核苷酸调制(HCN)通道家族对于一系列电信号传导至关重要,包括心脏和神经元的起搏活动、设定静息膜电特性以及树突整合。这些非选择性阳离子通道是心脏和神经细胞I(f)、I(h)和I(q)电流的基础,由膜超极化激活,并受环核苷酸如cAMP和cGMP结合的调制。cAMP介导的通道活性增强在很大程度上导致了β-肾上腺素能激动剂引起的心率增加。在这里,我们通过研究包含环核苷酸结合结构域(CNBD)和将CNBD连接到孔的C-连接区的HCN2的羧基末端片段,研究了这种调制的潜在机制。该C末端片段与cAMP或cGMP结合的X射线晶体学结构,连同平衡沉降分析,确定了一个四聚化结构域和环核苷酸特异性的机制,并提出了一个配体依赖性通道调制的模型。基于与HCN通道的氨基酸序列相似性,环核苷酸门控通道以及与eag和KAT1相关的通道家族在结构和机制上可能与HCN通道相关。

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