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Two-dimensional cochlear micromechanics measured in vivo demonstrate radial tuning within the mouse organ of Corti

  • Hee Yoon Lee
  • , Patrick D. Raphael
  • , Anping Xia
  • , Jinkyung Kim
  • , Nicolas Grillet
  • , Brian E. Applegate
  • , Audrey K.Ellerbee Bowden
  • , John S. Oghalai

Producción científica: Articlerevisión exhaustiva

131 Citas (Scopus)

Resumen

The exquisite sensitivity and frequency discrimination of mammalian hearing underlie the ability to understand complex speech in noise. This requires force generation by cochlear outer hair cells (OHCs) to amplify the basilar membrane traveling wave; however, it is unclear how amplification is achieved with sharp frequency tuning. Here we investigated the origin of tuning by measuring sound-induced 2-D vibrations within the mouse organ of Corti in vivo. Our goal was to determine the transfer function relating the radial shear between the structures that deflect the OHC bundle, the tectorial membrane and reticular lamina, to the transverse motion of the basilar membrane. Wefound that, after normalizing their responses to the vibration of the basilar membrane, the radial vibrations of the tectorial membrane and reticular lamina were tuned. The radial tuning peaked at a higher frequency than transverse basilar membrane tuning in the passive, postmortem condition. The radial tuning was similar in dead mice, indicating that this reflected passive, not active, mechanics. These findings were exaggerated in TectaC1509G/C1509G mice, where the tectorial membrane is detached from OHC stereocilia, arguing that the tuning of radial vibrations within the hair cell epithelium is distinct from tectorial membrane tuning. Together, these results reveal a passive, frequency-dependent contribution to cochlear filtering that is independent of basilar membrane filtering. These data argue that passive mechanics within the organ of Corti sharpen frequency selectivity by defining which OHCs enhance the vibration of the basilar membrane, thereby tuning the gain of cochlear amplification.

Idioma originalEnglish
Páginas (desde-hasta)8160-8173
Número de páginas14
PublicaciónJournal of Neuroscience
Volumen36
N.º31
DOI
EstadoPublished - ago 3 2016

Nota bibliográfica

Publisher Copyright:
© 2016 the authors.

Financiación

This work was supported by National Institutes of Health, National Institute on Deafness and Other Communication Disorders Grants DC014450, DC013774, and DC010363, the Stanford Crack the Neural Code Seed Grant Program, and a Stanford Nano Shared Facilities Seed Grant. We thank Drs. Charles Steele, Sunil Puria, and Tony Ricci for helpful discussions; and Chris Gralapp for artwork.

FinanciadoresNúmero del financiador
National Institutes of Health (NIH)
National Institute on Deafness and Other Communication DisordersDC013774, P30DC010363, DC014450

    ASJC Scopus subject areas

    • General Neuroscience

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