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本文引用的文献

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Processing of X-ray diffraction data collected in oscillation mode.振荡模式下收集的X射线衍射数据的处理。
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The Contribution of HCN4 to normal sinus node function in humans and animal models.HCN4对人类和动物模型正常窦房结功能的作用。
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Hyperpolarization-activated cation channels: from genes to function.超极化激活的阳离子通道:从基因到功能
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Mouse models for studying pacemaker channel function and sinus node arrhythmia.用于研究起搏器通道功能和窦房结心律失常的小鼠模型。
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Pacemaker activity of the human sinoatrial node: role of the hyperpolarization-activated current, I(f).人类窦房结的起搏活动:超极化激活电流I(f)的作用。
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Molecular basis of funny current (If) in normal and failing human heart.正常和衰竭的人类心脏中起搏电流(If)的分子基础。
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人类 HCN4 通道中 cAMP 依赖性门控的结构基础。

Structural basis for the cAMP-dependent gating in the human HCN4 channel.

机构信息

Department of Physiology and Biophysics, School of Medicine, Virginia Commonwealth University, Richmond, Virginia 23298, USA.

出版信息

J Biol Chem. 2010 Nov 19;285(47):37082-91. doi: 10.1074/jbc.M110.152033. Epub 2010 Sep 9.

DOI:10.1074/jbc.M110.152033
PMID:20829353
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC2978636/
Abstract

Hyperpolarization-activated cAMP-regulated (HCN) channels play important physiological roles in both cardiovascular and central nervous systems. Among the four HCN isoforms, HCN2 and HCN4 show high expression levels in the human heart, with HCN4 being the major cardiac isoform. The previously published crystal structure of the mouse HCN2 (mHCN2) C-terminal fragment, including the C-linker and the cyclic-nucleotide binding domain (CNBD), has provided many insights into cAMP-dependent gating in HCN channels. However, structures of other mammalian HCN channel isoforms have been lacking. Here we used a combination of approaches including structural biology, biochemistry, and electrophysiology to study cAMP-dependent gating in HCN4 channel. First we solved the crystal structure of the C-terminal fragment of human HCN4 (hHCN4) channel at 2.4 Å. Overall we observed a high similarity between mHCN2 and hHCN4 crystal structures. Functional comparison between two isoforms revealed that compared with mHCN2, the hHCN4 protein exhibited marked different contributions to channel function, such as a ∼3-fold reduction in the response to cAMP. Guided by structural differences in the loop region between β4 and β5 strands, we identified residues that could partially account for the differences in response to cAMP between mHCN2 and hHCN4 proteins. Moreover, upon cAMP binding, the hHCN4 C-terminal protein exerts a much prolonged effect in channel deactivation that could have significant physiological contributions.

摘要

超极化激活环核苷酸门控 (HCN) 通道在心血管和中枢神经系统中均发挥重要的生理作用。在四种 HCN 同工型中,HCN2 和 HCN4 在人体心脏中表达水平较高,其中 HCN4 是主要的心脏同工型。先前发表的小鼠 HCN2(mHCN2)C 端片段(包括 C 连接子和环核苷酸结合域(CNBD))的晶体结构为 HCN 通道中 cAMP 依赖性门控提供了许多见解。然而,其他哺乳动物 HCN 通道同工型的结构仍然缺乏。在这里,我们使用包括结构生物学、生物化学和电生理学在内的多种方法来研究 HCN4 通道中 cAMP 依赖性门控。首先,我们以 2.4Å 的分辨率解析了人源 HCN4(hHCN4)通道 C 端片段的晶体结构。总体而言,我们观察到 mHCN2 和 hHCN4 晶体结构之间具有高度相似性。两种同工型的功能比较表明,与 mHCN2 相比,hHCN4 蛋白对通道功能的贡献明显不同,例如对 cAMP 的反应降低了约 3 倍。受β4 和β5 链之间环区结构差异的指导,我们确定了一些残基,这些残基可以部分解释 mHCN2 和 hHCN4 蛋白对 cAMP 反应的差异。此外,在 cAMP 结合后,hHCN4 C 端蛋白在通道失活方面发挥了更长时间的作用,这可能具有重要的生理意义。