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Laser Doppler velocimeter based on the self-mixing effect in a fiber-coupled semiconductor laser: theory.基于光纤耦合半导体激光器自混合效应的激光多普勒测速仪:理论
Appl Opt. 1992 Jun 20;31(18):3401-8. doi: 10.1364/AO.31.003401.
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Transmission and transduction in the cochlea.耳蜗中的传导与转导。
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Study of mechanical motions in the basal region of the chinchilla cochlea.灰鼠耳蜗基部区域机械运动的研究。
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The mechanical waveform of the basilar membrane. III. Intensity effects.基底膜的机械波形。III. 强度效应。
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Vibration of beads placed on the basilar membrane in the basal turn of the cochlea.放置在耳蜗基底转基底膜上的珠子的振动。
J Acoust Soc Am. 1999 Dec;106(6):L59-64. doi: 10.1121/1.428147.
6
Timing of cochlear feedback: spatial and temporal representation of a tone across the basilar membrane.耳蜗反馈的时机:基底膜上音调的空间和时间表征。
Nat Neurosci. 1999 Jul;2(7):642-8. doi: 10.1038/10197.
7
The radial pattern of basilar membrane motion evoked by electric stimulation of the cochlea.通过耳蜗电刺激诱发的基底膜运动的径向模式。
Hear Res. 1999 May;131(1-2):39-46. doi: 10.1016/s0378-5955(99)00009-x.
8
Limiting dynamics of high-frequency electromechanical transduction of outer hair cells.外毛细胞高频机电转导的限制动力学
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9
Comparing in vitro, in situ, and in vivo experimental data in a three-dimensional model of mammalian cochlear mechanics.在哺乳动物耳蜗力学三维模型中比较体外、原位和体内实验数据。
Proc Natl Acad Sci U S A. 1999 Mar 30;96(7):3676-81. doi: 10.1073/pnas.96.7.3676.
10
Keratin filament deployment and cytoskeletal networking in a sensory epithelium that vibrates during hearing.在听觉过程中振动的感觉上皮细胞中的角蛋白丝部署和细胞骨架网络。
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豚鼠基底膜上音调的时空表征。

The spatial and temporal representation of a tone on the guinea pig basilar membrane.

作者信息

Nilsen K E, Russell I J

机构信息

School of Biological Sciences, University of Sussex, Falmer Brighton, BN1 9QG, United Kingdom.

出版信息

Proc Natl Acad Sci U S A. 2000 Oct 24;97(22):11751-8. doi: 10.1073/pnas.97.22.11751.

DOI:10.1073/pnas.97.22.11751
PMID:11050205
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC34345/
Abstract

In the mammalian cochlea, the basilar membrane's (BM) mechanical responses are amplified, and frequency tuning is sharpened through active feedback from the electromotile outer hair cells (OHCs). To be effective, OHC feedback must be delivered to the correct region of the BM and introduced at the appropriate time in each cycle of BM displacement. To investigate when OHCs contribute to cochlear amplification, a laser-diode interferometer was used to measure tone-evoked BM displacements in the basal turn of the guinea pig cochlea. Measurements were made at multiple sites across the width of the BM, which are tuned to the same characteristic frequency (CF). In response to CF tones, the largest displacements occur in the OHC region and phase lead those measured beneath the outer pillar cells and adjacent to the spiral ligament by about 90 degrees. Postmortem, responses beneath the OHCs are reduced by up to 65 dB, and all regions across the width of the BM move in unison. We suggest that OHCs amplify BM responses to CF tones when the BM is moving at maximum velocity. In regions of the BM where OHCs contribute to its motion, the responses are compressive and nonlinear. We measured the distribution of nonlinear compressive vibrations along the length of the BM in response to a single frequency tone and estimated that OHC amplification is restricted to a 1.25- to 1.40-mm length of BM centered on the CF place.

摘要

在哺乳动物的耳蜗中,基底膜(BM)的机械反应通过电动外毛细胞(OHC)的主动反馈得到放大,频率调谐也得以锐化。为了有效发挥作用,OHC的反馈必须传递到BM的正确区域,并在BM位移的每个周期的适当时间引入。为了研究OHC何时对耳蜗放大起作用,使用激光二极管干涉仪测量豚鼠耳蜗基底转中纯音诱发的BM位移。在BM宽度上的多个位置进行测量,这些位置被调谐到相同的特征频率(CF)。响应CF纯音时,最大位移出现在OHC区域,并且相位比在外柱细胞下方和螺旋韧带附近测量的位移超前约90度。死后,OHC下方的反应降低多达65分贝,并且BM宽度上的所有区域同步移动。我们认为,当BM以最大速度移动时,OHC会放大BM对CF纯音的反应。在BM中OHC对其运动有贡献的区域,反应是压缩性的且是非线性的。我们测量了响应单频纯音时沿BM长度的非线性压缩振动分布,并估计OHC放大作用局限于以CF位置为中心的1.25至1.40毫米长的BM区域。