4.5 Article

Overturning the mechanisms of cochlear amplification via area deformations of the organ of Corti

期刊

JOURNAL OF THE ACOUSTICAL SOCIETY OF AMERICA
卷 152, 期 4, 页码 2227-2239

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ACOUSTICAL SOC AMER AMER INST PHYSICS
DOI: 10.1121/10.0014794

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  1. NIH/NIDCD [R21 DC019712, F32 DC016211, R21 DC019209, K99/R00 DC016906, R01 DC014450, R01 DC003687]

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The mammalian ear contains a cellular amplifier that enhances sound-induced waves in the cochlea. The mechanism behind this amplifier is not fully understood. Recent studies suggest that the power transfer from the outer hair cells to the basilar membrane may be negative or highly inefficient, and the vibration of the top side of the organ of Corti plays a significant role in amplification, challenging previous assumptions.
The mammalian ear embeds a cellular amplifier that boosts sound-induced hydromechanical waves as they propagate along the cochlea. The operation of this amplifier is not fully understood and is difficult to disentangle experimentally. In the prevailing view, cochlear waves are amplified by the piezo-electric action of the outer hair cells (OHCs), whose cycle-by-cycle elongations and contractions inject power into the local motion of the basilar membrane (BM). Concomitant deformations of the opposing (or top ) side of the organ of Corti are assumed to play a minor role and are generally neglected. However, analysis of intracochlear motions obtained using optical coherence tomography calls this prevailing view into question. In particular, the analysis suggests that (i) the net local power transfer from the OHCs to the BM is either negative or highly inefficient; and (ii) vibration of the top side of the organ of Corti plays a primary role in traveling-wave amplification. A phenomenological model derived from these observations manifests realistic cochlear responses and suggests that amplification arises almost entirely from OHC-induced deformations of the top side of the organ of Corti. In effect, the model turns classic assumptions about spatial impedance relations and power-flow direction within the sensory epithelium upside down.

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