Electrochemical properties of the non‐excitable tissue stria vascularis of the mammalian cochlea are sensitive to sounds

内淋巴 耳蜗 毛细胞 耳蜗内电位 生物物理学 内耳 去极化 膜电位 受体电位 化学 细胞外 电生理学 解剖 生物 细胞生物学 神经科学 生物化学 受体
作者
Qí Zhāng,T. Ōta,Takamasa Yoshida,Daisuke Ino,Mitsuo Satõ,Katsumi Doi,Arata Horii,Fumiaki Nin,Hiroshi Hibino
出处
期刊:The Journal of Physiology [Wiley]
卷期号:599 (19): 4497-4516 被引量:4
标识
DOI:10.1113/jp281981
摘要

Abstract Excitable cochlear hair cells convert the mechanical energy of sounds into the electrical signals necessary for neurotransmission. The key process is cellular depolarization via K + entry from K + ‐enriched endolymph through hair cells’ mechanosensitive channels. Positive 80 mV potential in endolymph accelerates the K + entry, thereby sensitizing hearing. This potential represents positive extracellular potential within the epithelial‐like stria vascularis; the latter potential stems from K + equilibrium potential ( E K ) across the strial membrane. Extra‐ and intracellular [K + ] determining E K are likely maintained by continuous unidirectional circulation of K + through a putative K + transport pathway containing hair cells and stria. Whether and how the non‐excitable tissue stria vascularis responds to acoustic stimuli remains unclear. Therefore, we analysed a cochlear portion for the best frequency, 1 kHz, by theoretical and experimental approaches. We have previously developed a computational model that integrates ion channels and transporters in the stria and hair cells into a circuit and described a circulation current composed of K + . Here, in this model, mimicking of hair cells’ K + flow induced by a 1 kHz sound modulated the circulation current and affected the strial ion transport mechanisms; the latter effect resulted in monotonically decreasing potential and increasing [K + ] in the extracellular strial compartment. Similar results were obtained when the stria in acoustically stimulated animals was examined using microelectrodes detecting the potential and [K + ]. Measured potential dynamics mirrored the E K change. Collectively, because stria vascularis is electrically coupled to hair cells by the circulation current in vivo too, the strial electrochemical properties respond to sounds. image Key points A highly positive potential of +80 mV in K + ‐enriched endolymph in the mammalian cochlea accelerates sound‐induced K + entry into excitable sensory hair cells, a process that triggers hearing. This unique endolymphatic potential represents an E K ‐based battery for a non‐excitable epithelial‐like tissue, the stria vascularis. To examine whether and how the stria vascularis responds to sounds, we used our computational model, in which strial channels and transporters are serially connected to those hair cells in a closed‐loop circuit, and found that mimicking hair cell excitation by acoustic stimuli resulted in increased extracellular [K + ] and decreased the battery's potential within the stria. This observation was overall verified by electrophysiological experiments using live guinea pigs. The sensitivity of electrochemical properties of the stria to sounds indicates that this tissue is electrically coupled to hair cells by a radial ionic flow called a circulation current.
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