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Light-Induced Basilar Membrane Vibrations in the Sensitive Cochlea

机译:敏感耳蜗中的光诱导的基底膜振动

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The exceptional sensitivity of mammalian hearing organ is attributed to an outer hair cell-mediated active process, where forces produced by sensory cells boost sound-induced vibrations, making soft sounds audible. This process is thought to be local, with each section of the hearing organ capable of amplifying sound-evoked movement, and nearly instantaneous, since amplification can work for sounds at frequencies up to 100 kHz in some species. To test these precepts, we developed a method for focally stimulating the living hearing organ with light. Light pulses caused intense and highly damped mechanical responses followed by traveling waves that developed with considerable delay. The delayed response was identical to movements evoked by click-like sounds. A physiologically based mathematical model shows that such waves engage the active process, enhancing hearing sensitivity. The experiments and the theoretical analysis show that the active process is neither local nor instantaneous, but requires mechanical waves traveling from the cochlear base toward its apex.
机译:哺乳动物听力器官的特殊敏感性归因于外毛细胞介导的活性过程,其中感觉细胞产生的力升高声音引起的振动,使得柔和的声音听起来。该过程被认为是局部的,听力器官的每个部分都能够放大声音诱发运动,并且几乎瞬时,因为扩增可以在某些物种中为高达100kHz的频率的声音工作。为了测试这些戒备,我们开发了一种用光促进活的听觉器官的方法。光脉冲引起强烈且高度阻尼的机械响应,然后是具有相当延迟的波浪。延迟的响应与点击类似的声音引起的动作相同。基于生理学上的数学模型表明,这种波引起了活跃的过程,增强了听觉灵敏度。实验和理论分析表明,活性过程既不是局部也不瞬间,而是需要从耳蜗底部朝向其顶点行驶的机械波。

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