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Effect of the attachment of the tectorial membrane on cochlear micromechanics and two-tone suppression

机译:保护膜的附着对耳蜗微力学和两音抑制的影响

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摘要

The mechanical stimulation of the outer hair cell hair bundle (HB) is a key step in nonlinear cochlear amplification. We show how two-tone suppression (TTS), a hallmark of cochlear nonlinearity, can be used as an indirect measure of HB stimulation. Using two different nonlinear computational models of the cochlea, we investigate the effect of altering the mechanical load applied by the tectorial membrane (TM) on the outer hair cell HB. In the first model (TM-A model), the TM is attached to the spiral limbus (as in wild-type animals); in the second model (TM-D model), the TM is detached from the spiral limbus (mimicking the cochlea of OtoaEGFP/EGFP mutant mice). As in recent experiments, model simulations demonstrate that the absence of the TM attachment does not preclude cochlear amplification. However, detaching the TM alters the mechanical load applied by the TM on the HB at low frequencies and therefore affects TTS by low-frequency suppressors. For low-frequency suppressors, the suppression threshold obtained with the TM-A model corresponds to a constant suppressor displacement on the basilar membrane (as in experiments with wild-type animals), whereas it corresponds to a constant suppressor velocity with the TM-D model. The predictions with the TM-D model could be tested by measuring TTS on the basilar membrane of the OtoaEGFP/EGFP mice to improve our understanding of the fundamental workings of the cochlea.
机译:外部毛细胞发束(HB)的机械刺激是非线性耳蜗放大的关键步骤。我们展示了如何将双音抑制(TTS)(耳蜗非线性的标志)用作HB刺激的间接测量。使用耳蜗的两种不同的非线性计算模型,我们研究了改变由覆膜(TM)施加的机械负荷对外部毛细胞HB的影响。在第一个模型(TM-A模型)中,TM附着在螺旋角膜缘上(与野生型动物一样);在第二种模型(TM-D模型)中,TM从螺旋角膜缘分离(模仿OtoaEGFP / EGFP突变小鼠的耳蜗)。像最近的实验一样,模型仿真表明TM附件的存在并不排除耳蜗放大。但是,拆卸TM会改变TM在低频下施加在HB上的机械负载,因此会受到低频抑制器的影响。对于低频抑制器,通过TM-A模型获得的抑制阈值对应于基底膜上恒定的抑制器位移(如在野生型动物的实验中),而对应于TM-D的恒定抑制器速度模型。 TM-D模型的预测可以通过测量OtoaEGFP / EGFP小鼠基底膜上的TTS来检验,以提高我们对耳蜗基本功能的理解。

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