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耳蜗毛细胞纳米生理学的最新进展:紧密型感觉细胞中电信号的亚细胞区室化

Recent advances in cochlear hair cell nanophysiology: subcellular compartmentalization of electrical signaling in compact sensory cells.

作者信息

Effertz Thomas, Moser Tobias, Oliver Dominik

机构信息

InnerEarLab, Department of Otorhinolaryngology, University Medical Center Göttingen, 37099 Göttingen, Germany.

Institute for Auditory Neuroscience and InnerEarLab, University Medical Center Göttingen, 37099 Göttingen, Germany.

出版信息

Fac Rev. 2020 Dec 21;9:24. doi: 10.12703/r/9-24. eCollection 2020.

Abstract

In recent years, genetics, physiology, and structural biology have advanced into the molecular details of the sensory physiology of auditory hair cells. Inner hair cells (IHCs) and outer hair cells (OHCs) mediate two key functions: active amplification and non-linear compression of cochlear vibrations by OHCs and sound encoding by IHCs at their afferent synapses with the spiral ganglion neurons. OHCs and IHCs share some molecular physiology, e.g. mechanotransduction at the apical hair bundles, ribbon-type presynaptic active zones, and ionic conductances in the basolateral membrane. Unique features enabling their specific function include prestin-based electromotility of OHCs and indefatigable transmitter release at the highest known rates by ribbon-type IHC active zones. Despite their compact morphology, the molecular machineries that either generate electrical signals or are driven by these signals are essentially all segregated into local subcellular structures. This review provides a brief account on recent insights into the molecular physiology of cochlear hair cells with a specific focus on organization into membrane domains.

摘要

近年来,遗传学、生理学和结构生物学已经深入到听觉毛细胞感觉生理学的分子细节。内毛细胞(IHC)和外毛细胞(OHC)介导两种关键功能:OHC对耳蜗振动进行主动放大和非线性压缩,以及IHC在与螺旋神经节神经元的传入突触处进行声音编码。OHC和IHC共享一些分子生理学特征,例如顶端毛束的机械转导、带状突触前活性区以及基底外侧膜中的离子电导。使其具有特定功能的独特特征包括OHC基于prestin的电运动性以及带状IHC活性区以已知最高速率进行的不倦递质释放。尽管它们形态紧凑,但产生电信号或由这些信号驱动的分子机制基本上都被分隔到局部亚细胞结构中。本综述简要介绍了对耳蜗毛细胞分子生理学的最新见解,特别关注其组织成膜结构域的情况。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/4fcd/7886071/41b3f4d98d6c/facrev-09-24-g001.jpg

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