Ordiway George, McLellan Kristine, Sanchez Jason Tait
Roxelyn and Richard Pepper Department of Communication Sciences and Disorders, Northwestern University, Evanston, Illinois, United States.
Mortimer B. Zuckerman Mind, Brain, and Behavior Institute, Columbia University, New York City, New York, United States.
J Neurophysiol. 2025 Aug 1;134(2):458-470. doi: 10.1152/jn.00602.2024. Epub 2025 Jul 7.
The hyperpolarization-activated cyclic nucleotide-gated (HCN) ion channel is highly specialized, mediating the flow of potassium and sodium ions when a cell is hyperpolarized. Since it was discovered nearly half a century ago, the HCN channel structure and function have been extensively characterized throughout the nervous system. This includes the auditory system, where HCN channels are abundantly expressed and are used to encode sound features with high temporal fidelity. Despite the ubiquitous presence of HCN channels in auditory regions, the physiological benefits of these channels within the auditory system have not been synthesized. Here, we summarize the reported empirical measurements of HCN channel expression and HCN channel-mediated current, known as I. From the hair cells of the inner ear to the auditory cortex, this comprehensive review reveals HCN channel contributions that mediate sound encoding. First, HCN channel subtype expression is heterogeneous and varies along the auditory structures' frequency axis (i.e., tonotopic gradient). Second, I contributes to action potential firing patterns and is influenced by channel localization, metabolic rate, and cyclic nucleotides in a context-dependent manner. Finally, HCN channels promote behaviors related to auditory perception, including synaptic coincidence detection, a property critical for auditory temporal processing, sound localization, and binaural hearing. This review establishes key features of HCN channels and I, highlighting seminal work, emerging trends, and gaps in knowledge for future research.
超极化激活的环核苷酸门控(HCN)离子通道高度特化,在细胞超极化时介导钾离子和钠离子的流动。自近半个世纪前被发现以来,HCN通道的结构和功能在整个神经系统中已得到广泛表征。这包括听觉系统,其中HCN通道大量表达,并用于以高时间保真度编码声音特征。尽管HCN通道在听觉区域普遍存在,但这些通道在听觉系统中的生理益处尚未得到综合阐述。在这里,我们总结了已报道的关于HCN通道表达和HCN通道介导的电流(称为Ih)的实证测量结果。从内耳的毛细胞到听觉皮层,这篇全面的综述揭示了HCN通道在介导声音编码方面的作用。首先,HCN通道亚型的表达是异质性的,并且沿听觉结构的频率轴(即音调梯度)变化。其次,Ih有助于动作电位发放模式,并以依赖于上下文的方式受到通道定位、代谢率和环核苷酸的影响。最后,HCN通道促进与听觉感知相关的行为,包括突触重合检测,这是听觉时间处理、声音定位和双耳听觉的关键特性。这篇综述确立了HCN通道和Ih的关键特征,突出了开创性工作、新兴趋势以及未来研究中的知识空白。