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Water permeability of the mammalian cochlea: functional features of an aquaporin-facilitated water shunt at the perilymph–endolymph barrier

机译:哺乳动物耳蜗的透水性:在水旁淋巴-内淋巴屏障处水通道蛋白促进的水分流器的功能特征

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摘要

The cochlear duct epithelium (CDE) constitutes a tight barrier that effectively separates the inner ear fluids, endolymph and perilymph, thereby maintaining distinct ionic and osmotic gradients that are essential for auditory function. However, in vivo experiments have demonstrated that the CDE allows for rapid water exchange between fluid compartments. The molecular mechanism governing water permeation across the CDE remains elusive. We computationally determined the diffusional (PD) and osmotic (Pf) water permeability coefficients for the mammalian CDE based on in silico simulations of cochlear water dynamics integrating previously derived in vivo experimental data on fluid flow with expression sites of molecular water channels (aquaporins, AQPs). The PD of the entire CDE (PD = 8.18 × 10−5 cm s−1) and its individual partitions including Reissner's membrane (PD = 12.06 × 10−5 cm s−1) and the organ of Corti (PD = 10.2 × 10−5 cm s−1) were similar to other epithelia with AQP-facilitated water permeation. The Pf of the CDE (Pf = 6.15 × 10−4 cm s−1) was also in the range of other epithelia while an exceptionally high Pf was determined for an epithelial subdomain of outer sulcus cells in the cochlear apex co-expressing AQP4 and AQP5 (OSCs; Pf = 156.90 × 10−3 cm s−1). The Pf/PD ratios of the CDE (Pf/PD = 7.52) and OSCs (Pf/PD = 242.02) indicate an aqueous pore-facilitated water exchange and reveal a high-transfer region or “water shunt” in the cochlear apex. This “water shunt” explains experimentally determined phenomena of endolymphatic longitudinal flow towards the cochlear apex. The water permeability coefficients of the CDE emphasise the physiological and pathophysiological relevance of water dynamics in the cochlea in particular for endolymphatic hydrops and Ménière's disease.
机译:耳蜗上皮(CDE)构成了一个紧密的屏障,可以有效地分离内耳液,内淋巴和外淋巴,从而保持听觉功能所必需的独特的离子和渗透梯度。但是,体内实验表明,CDE允许流体隔室之间的快速水交换。控制CDE中水渗透的分子机制仍然难以捉摸。我们基于计算机模拟耳蜗水动力学的计算机模拟,确定了哺乳动物CDE的扩散(PD)和渗透(Pf)渗透系数,该方法结合了先前导出的体内流体流动实验数据与分子水通道(水通道蛋白,AQPs)的位置)。整个CDE的PD(PD = 8.18×10 −5 cm s -1 )及其包括Reissner膜的单独分区(PD = 12.06×10 − 5 cms -1 )和Corti器官(PD = 10.2×10 -5 cmss -1 )与其他上皮细胞相似,AQP促进了水的渗透。 CDE的Pf(Pf = 6.15×10 −4 cm s -1 )也位于其他上皮的范围内,而上皮的Pf异常高共表达AQP4和AQP5的耳蜗外沟细胞亚结构域(OSC; Pf = 156.90×10 -3 cmss -1 )。 CDE(Pf / PD = 7.52)和OSC(Pf / PD = 242.02)的Pf / PD比表明水促进了孔的水交换,并显示了耳蜗先端的高转移区或“分水器”。这种“分流”解释了实验确定的朝向耳蜗尖的内淋巴纵向流现象。 CDE的透水系数强调了耳蜗中水动力学的生理和病理生理相关性,特别是对于内淋巴积水和梅尼埃病。

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