Oregon Health & Science University, Oregon Hearing Research Center, Portland, Oregon 97239-3098.
Oregon Health & Science University, Oregon Hearing Research Center, Portland, Oregon 97239-3098, Xijing Hospital, Fourth Military Medical University, Department of Otolaryngology/Head & Neck Surgery, Xi'an 710032, People's Republic of China,
J Neurosci. 2014 Jul 2;34(27):9051-8. doi: 10.1523/JNEUROSCI.0722-14.2014.
The detection of sound by the mammalian hearing organ involves a complex mechanical interplay among different cell types. The inner hair cells, which are the primary sensory receptors, are stimulated by the structural vibrations of the entire organ of Corti. The outer hair cells are thought to modulate these sound-evoked vibrations to enhance hearing sensitivity and frequency resolution, but it remains unclear whether other structures also contribute to frequency tuning. In the current study, sound-evoked vibrations were measured at the stereociliary side of inner and outer hair cells and their surrounding supporting cells, using optical coherence tomography interferometry in living anesthetized guinea pigs. Our measurements demonstrate the presence of multiple vibration modes as well as significant differences in frequency tuning and response phase among different cell types. In particular, the frequency tuning at the inner hair cells differs from other cell types, causing the locus of maximum inner hair cell activation to be shifted toward the apex of the cochlea compared with the outer hair cells. These observations show that additional processing and filtering of acoustic signals occur within the organ of Corti before inner hair cell excitation, representing a departure from established theories.
哺乳动物听觉器官对声音的检测涉及不同细胞类型之间复杂的机械相互作用。内毛细胞是主要的感觉受体,它们受到整个柯蒂氏器结构振动的刺激。人们认为外毛细胞调节这些声音引起的振动,以提高听力灵敏度和频率分辨率,但尚不清楚其他结构是否也有助于频率调谐。在目前的研究中,使用活体麻醉豚鼠的光学相干断层扫描干涉法,在内毛细胞和外毛细胞及其周围支持细胞的静纤毛侧测量了声音引起的振动。我们的测量结果表明存在多种振动模式,以及不同细胞类型之间的频率调谐和响应相位存在显著差异。特别是,内毛细胞的频率调谐与其他细胞类型不同,导致内毛细胞的最大激活部位与外毛细胞相比向耳蜗顶点移动。这些观察结果表明,在毛细胞兴奋之前,在柯蒂氏器内发生了额外的声信号处理和滤波,这与已建立的理论有所偏离。