神秘的HCN通道:细胞神经生理学的视角。

IF 3.2 4区 生物学 Q2 BIOCHEMISTRY & MOLECULAR BIOLOGY
Proteins-Structure Function and Bioinformatics Pub Date : 2025-01-01 Epub Date: 2023-11-19 DOI:10.1002/prot.26643
Poonam Mishra, Rishikesh Narayanan
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引用次数: 0

摘要

具有混合阳离子选择性的慢超极化激活离子通道在由去极化驱动的神经元动作电位的快速世界中发挥什么生理作用?这个令人困惑的问题激起了生理学爱好者对超极化激活的环核苷酸门控(HCN)通道的好奇心,这种通道在全身广泛表达,尤其是在神经元中。在这篇综述中,我们强调有必要从HCN通道如何响应时变信号的角度来评估它们,同时也考虑它们与其他共表达通道和受体的相互作用。首先,我们说明了HCN通道的独特结构和功能特征如何使它们能够在它们表达的神经元中介导缓慢的负反馈回路。我们提出了这种负反馈回路对神经元响应特性的几种生理意义,包括神经元增益、电压下降和反弹、时间求和、膜电位共振、感应相位引线、尖峰触发平均和重合检测。接下来,我们认为HCN通道对神经元生理学的总体影响主要依赖于它们与其他共表达通道和受体的相互作用。与其他通道的相互作用允许HCN通道介导固有振荡,使其获得“起搏器通道”的称号,并调节尖峰频率适应、平台电位、突触前末端的神经递质释放和轴突初始段的尖峰起始。我们还探讨了HCN通道在不同神经元亚型中空间非均匀亚细胞分布的影响及其与其他通道和受体的相互作用。最后,我们讨论了HCN通道的可塑性是如何广泛存在的,并且可以介导神经元中不同的编码、稳态和神经保护功能。综上所述,我们认为HCN通道形成了一类重要的通道,由于其独特的门控动力学,使它们成为一个谜题。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
The enigmatic HCN channels: A cellular neurophysiology perspective.

What physiological role does a slow hyperpolarization-activated ion channel with mixed cation selectivity play in the fast world of neuronal action potentials that are driven by depolarization? That puzzling question has piqued the curiosity of physiology enthusiasts about the hyperpolarization-activated cyclic nucleotide-gated (HCN) channels, which are widely expressed across the body and especially in neurons. In this review, we emphasize the need to assess HCN channels from the perspective of how they respond to time-varying signals, while also accounting for their interactions with other co-expressing channels and receptors. First, we illustrate how the unique structural and functional characteristics of HCN channels allow them to mediate a slow negative feedback loop in the neurons that they express in. We present the several physiological implications of this negative feedback loop to neuronal response characteristics including neuronal gain, voltage sag and rebound, temporal summation, membrane potential resonance, inductive phase lead, spike triggered average, and coincidence detection. Next, we argue that the overall impact of HCN channels on neuronal physiology critically relies on their interactions with other co-expressing channels and receptors. Interactions with other channels allow HCN channels to mediate intrinsic oscillations, earning them the "pacemaker channel" moniker, and to regulate spike frequency adaptation, plateau potentials, neurotransmitter release from presynaptic terminals, and spike initiation at the axonal initial segment. We also explore the impact of spatially non-homogeneous subcellular distributions of HCN channels in different neuronal subtypes and their interactions with other channels and receptors. Finally, we discuss how plasticity in HCN channels is widely prevalent and can mediate different encoding, homeostatic, and neuroprotective functions in a neuron. In summary, we argue that HCN channels form an important class of channels that mediate a diversity of neuronal functions owing to their unique gating kinetics that made them a puzzle in the first place.

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来源期刊
Proteins-Structure Function and Bioinformatics
Proteins-Structure Function and Bioinformatics 生物-生化与分子生物学
CiteScore
5.90
自引率
3.40%
发文量
172
审稿时长
3 months
期刊介绍: PROTEINS : Structure, Function, and Bioinformatics publishes original reports of significant experimental and analytic research in all areas of protein research: structure, function, computation, genetics, and design. The journal encourages reports that present new experimental or computational approaches for interpreting and understanding data from biophysical chemistry, structural studies of proteins and macromolecular assemblies, alterations of protein structure and function engineered through techniques of molecular biology and genetics, functional analyses under physiologic conditions, as well as the interactions of proteins with receptors, nucleic acids, or other specific ligands or substrates. Research in protein and peptide biochemistry directed toward synthesizing or characterizing molecules that simulate aspects of the activity of proteins, or that act as inhibitors of protein function, is also within the scope of PROTEINS. In addition to full-length reports, short communications (usually not more than 4 printed pages) and prediction reports are welcome. Reviews are typically by invitation; authors are encouraged to submit proposed topics for consideration.
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