Ren Tianying
Oregon Hearing Research Center (NRC 04), Department of Otolaryngology and Head and Neck Surgery, Oregon Health and Science University, 3181 Southwest Sam Jackson Park Road, Portland, OR 97239-3098, USA.
Proc Natl Acad Sci U S A. 2002 Dec 24;99(26):17101-6. doi: 10.1073/pnas.262663699. Epub 2002 Dec 2.
In the normal mammalian ear, sound vibrates the eardrum, causing the tiny bones of the middle ear to vibrate, transferring the vibration to the inner ear fluids. The vibration propagates from the base of the cochlea to its apex along the cochlear partition. As essential as this concept is to the theory of hearing, the waveform of cochlear partition vibration has yet to be measured in vivo. Here I report a "snapshot" (the instantaneous waveform of cochlear partition vibration) measured in the basal turn of the sensitive gerbil cochlea using a scanning laser interferometer. For 16-kHz tones, the phase delay is up to 6pi radians over the observed cochlear length (<1,000 microm), and instantaneous waveforms show sound propagation along the cochlear partition, supporting the existence of the cochlear traveling wave. The detectable basilar membrane response to a low-level 16-kHz tone occurs over a very restricted ( approximately equal 600 microm) range. The observed vibration shows compressive nonlinear growth, a shorter wavelength, and a slower propagation velocity along the cochlear length than previously reported. Data obtained at different frequencies show the relationship between the longitudinal pattern and frequency tuning, demonstrating that the observed localized traveling wave in this study is indeed the spatial representation of the sharp tuning observed in the frequency domain.
在正常的哺乳动物耳中,声音使鼓膜振动,导致中耳的微小骨骼振动,将振动传递到内耳液体。振动沿着耳蜗隔板从耳蜗底部传播到其顶部。尽管这一概念对听觉理论至关重要,但耳蜗隔板振动的波形尚未在体内测量。在此我报告使用扫描激光干涉仪在敏感沙鼠耳蜗基底转测量的一个“快照”(耳蜗隔板振动的瞬时波形)。对于16千赫的音调,在观察到的耳蜗长度(<1000微米)上相位延迟高达6π弧度,并且瞬时波形显示声音沿着耳蜗隔板传播,支持耳蜗行波的存在。对低强度16千赫音调可检测到的基底膜反应发生在非常有限(约600微米)的范围内。观察到的振动显示出压缩非线性增长,波长较短,并且沿耳蜗长度的传播速度比先前报道的慢。在不同频率下获得的数据显示了纵向模式与频率调谐之间的关系,表明本研究中观察到的局部行波确实是在频域中观察到的尖锐调谐的空间表现。