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外毛细胞体细胞电运动的功率效率。

Power efficiency of outer hair cell somatic electromotility.

作者信息

Rabbitt Richard D, Clifford Sarah, Breneman Kathryn D, Farrell Brenda, Brownell William E

机构信息

Department of Bioengineering, University of Utah, Salt Lake City, Utah, United States of America.

出版信息

PLoS Comput Biol. 2009 Jul;5(7):e1000444. doi: 10.1371/journal.pcbi.1000444. Epub 2009 Jul 24.

Abstract

Cochlear outer hair cells (OHCs) are fast biological motors that serve to enhance the vibration of the organ of Corti and increase the sensitivity of the inner ear to sound. Exactly how OHCs produce useful mechanical power at auditory frequencies, given their intrinsic biophysical properties, has been a subject of considerable debate. To address this we formulated a mathematical model of the OHC based on first principles and analyzed the power conversion efficiency in the frequency domain. The model includes a mixture-composite constitutive model of the active lateral wall and spatially distributed electro-mechanical fields. The analysis predicts that: 1) the peak power efficiency is likely to be tuned to a specific frequency, dependent upon OHC length, and this tuning may contribute to the place principle and frequency selectivity in the cochlea; 2) the OHC power output can be detuned and attenuated by increasing the basal conductance of the cell, a parameter likely controlled by the brain via the efferent system; and 3) power output efficiency is limited by mechanical properties of the load, thus suggesting that impedance of the organ of Corti may be matched regionally to the OHC. The high power efficiency, tuning, and efferent control of outer hair cells are the direct result of biophysical properties of the cells, thus providing the physical basis for the remarkable sensitivity and selectivity of hearing.

摘要

耳蜗外毛细胞(OHCs)是快速生物马达,其作用是增强柯蒂氏器的振动并提高内耳对声音的敏感度。鉴于其内在生物物理特性,OHCs究竟如何在听觉频率下产生有用的机械能一直是一个备受争议的话题。为了解决这个问题,我们基于第一原理构建了一个OHC数学模型,并在频域中分析了功率转换效率。该模型包括活性侧壁的混合复合材料本构模型和空间分布的机电场。分析预测:1)峰值功率效率可能会根据OHC长度被调谐到特定频率,这种调谐可能有助于耳蜗中的位置原理和频率选择性;2)通过增加细胞的基底电导,OHC的功率输出可能会失谐并衰减,这一参数可能由大脑通过传出系统控制;3)功率输出效率受负载机械特性的限制,因此表明柯蒂氏器的阻抗可能在区域上与OHC匹配。外毛细胞的高功率效率、调谐和传出控制是细胞生物物理特性的直接结果,从而为听力的卓越敏感度和选择性提供了物理基础。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/b67d/2705677/62e95f670ba9/pcbi.1000444.g001.jpg

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