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超极化激活的阳离子通道:从基因到功能

Hyperpolarization-activated cation channels: from genes to function.

作者信息

Biel Martin, Wahl-Schott Christian, Michalakis Stylianos, Zong Xiangang

机构信息

Center for Integrated Protein Science CIPS-M and Zentrum für Pharmaforschung, Department Pharmazie, Pharmakologie für Naturwissenschaften, Ludwig-Maximilians-Universität München, Butenandtstr. 5-13, Munich D-81377, Germany.

出版信息

Physiol Rev. 2009 Jul;89(3):847-85. doi: 10.1152/physrev.00029.2008.

Abstract

Hyperpolarization-activated cyclic nucleotide-gated (HCN) channels comprise a small subfamily of proteins within the superfamily of pore-loop cation channels. In mammals, the HCN channel family comprises four members (HCN1-4) that are expressed in heart and nervous system. The current produced by HCN channels has been known as I(h) (or I(f) or I(q)). I(h) has also been designated as pacemaker current, because it plays a key role in controlling rhythmic activity of cardiac pacemaker cells and spontaneously firing neurons. Extensive studies over the last decade have provided convincing evidence that I(h) is also involved in a number of basic physiological processes that are not directly associated with rhythmicity. Examples for these non-pacemaking functions of I(h) are the determination of the resting membrane potential, dendritic integration, synaptic transmission, and learning. In this review we summarize recent insights into the structure, function, and cellular regulation of HCN channels. We also discuss in detail the different aspects of HCN channel physiology in the heart and nervous system. To this end, evidence on the role of individual HCN channel types arising from the analysis of HCN knockout mouse models is discussed. Finally, we provide an overview of the impact of HCN channels on the pathogenesis of several diseases and discuss recent attempts to establish HCN channels as drug targets.

摘要

超极化激活的环核苷酸门控(HCN)通道是孔环阳离子通道超家族中的一个小蛋白亚家族。在哺乳动物中,HCN通道家族包含四个成员(HCN1 - 4),它们在心脏和神经系统中表达。HCN通道产生的电流一直被称为I(h)(或I(f)或I(q))。I(h)也被指定为起搏电流,因为它在控制心脏起搏细胞的节律性活动和自发放电神经元方面起着关键作用。过去十年的广泛研究提供了令人信服的证据,表明I(h)也参与了许多与节律性无直接关联的基本生理过程。I(h)的这些非起搏功能的例子包括静息膜电位的确定、树突整合、突触传递和学习。在这篇综述中,我们总结了对HCN通道的结构、功能和细胞调节的最新见解。我们还详细讨论了HCN通道在心脏和神经系统生理学中的不同方面。为此,讨论了从HCN基因敲除小鼠模型分析中得出的关于个体HCN通道类型作用的证据。最后,我们概述了HCN通道对几种疾病发病机制的影响,并讨论了最近将HCN通道确立为药物靶点的尝试。

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