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首页> 外文期刊>Scientific reports. >Reducing tectorial membrane viscoelasticity enhances spontaneous otoacoustic emissions and compromises the detection of low level sound
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Reducing tectorial membrane viscoelasticity enhances spontaneous otoacoustic emissions and compromises the detection of low level sound

机译:降低保护膜的粘弹性可增强自发性耳声发射,并不利于检测低强度声音

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The mammalian cochlea is able to detect faint sounds due to the presence of an active nonlinear feedback mechanism that boosts cochlear vibrations of low amplitude. Because of this feedback, self-sustained oscillations called spontaneous otoacoustic emissions (SOAEs) can often be measured in the ear canal. Recent experiments in genetically modified mice have demonstrated that mutations of the genes expressed in the tectorial membrane (TM), an extracellular matrix located in the cochlea, can significantly enhance the generation of SOAEs. Multiple untested mechanisms have been proposed to explain these unexpected results. In this work, a physiologically motivated computational model of a mammalian species commonly studied in auditory research, the gerbil, is used to demonstrate that altering the viscoelastic properties of the TM tends to affect the linear stability of the cochlea, SOAE generation and the cochlear response to low amplitude stimuli. These results suggest that changes in TM properties might be the underlying cause for SOAE enhancement in some mutant mice. Furthermore, these theoretical findings imply that the TM contributes to keeping the mammalian cochlea near an oscillatory instability, which promotes high sensitivity and the detection of low level stimuli.
机译:由于存在主动非线性反馈机制,哺乳动物的耳蜗能够检测到微弱的声音,该机制会增强低振幅的耳蜗振动。由于这种反馈,通常可以在耳道中测量称为自发性耳声发射(SOAE)的自持振荡。最近在转基因小鼠中进行的实验表明,在耳蜗细胞膜基质膜(TM)中表达的基因突变可以显着增强SOAE的产生。已经提出了多种未经测试的机制来解释这些意外结果。在这项工作中,使用在听觉研究中通常研究的哺乳动物沙伯的生理动机计算模型来证明改变TM的粘弹性质会影响耳蜗的线性稳定性,SOAE的产生和耳蜗的反应对低振幅的刺激。这些结果表明,TM特性的变化可能是某些突变小鼠SOAE增强的根本原因。此外,这些理论发现暗示TM有助于保持哺乳动物的耳蜗接近振荡不稳定,这促进了高灵敏度和低水平刺激的检测。

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