Vibration of the organ of Corti within the cochlear apex in mice

Author:

Gao Simon S.12,Wang Rosalie1,Raphael Patrick D.1,Moayedi Yalda3,Groves Andrew K.345,Zuo Jian6,Applegate Brian E.7,Oghalai John S.1

Affiliation:

1. Department of Otolaryngology-Head and Neck Surgery, Stanford University School of Medicine, Stanford, California;

2. Department of Bioengineering, Rice University, Houston, Texas;

3. Department of Neuroscience, Baylor College of Medicine, Houston, Texas;

4. Department of Molecular and Human Genetics, Baylor College of Medicine, Houston, Texas;

5. Program in Developmental Biology, Baylor College of Medicine, Houston, Texas;

6. Department of Developmental Neurobiology, St. Jude Children's Research Hospital, Memphis, Tennessee; and

7. Department of Biomedical Engineering, Texas A&M University, College Station, Texas

Abstract

The tonotopic map of the mammalian cochlea is commonly thought to be determined by the passive mechanical properties of the basilar membrane. The other tissues and cells that make up the organ of Corti also have passive mechanical properties; however, their roles are less well understood. In addition, active forces produced by outer hair cells (OHCs) enhance the vibration of the basilar membrane, termed cochlear amplification. Here, we studied how these biomechanical components interact using optical coherence tomography, which permits vibratory measurements within tissue. We measured not only classical basilar membrane tuning curves, but also vibratory responses from the rest of the organ of Corti within the mouse cochlear apex in vivo. As expected, basilar membrane tuning was sharp in live mice and broad in dead mice. Interestingly, the vibratory response of the region lateral to the OHCs, the “lateral compartment,” demonstrated frequency-dependent phase differences relative to the basilar membrane. This was sharply tuned in both live and dead mice. We then measured basilar membrane and lateral compartment vibration in transgenic mice with targeted alterations in cochlear mechanics. Prestin499/499, Prestin−/−, and TectaC1509G/C1509G mice demonstrated no cochlear amplification but maintained the lateral compartment phase difference. In contrast, SfswapTg/Tg mice maintained cochlear amplification but did not demonstrate the lateral compartment phase difference. These data indicate that the organ of Corti has complex micromechanical vibratory characteristics, with passive, yet sharply tuned, vibratory characteristics associated with the supporting cells. These characteristics may tune OHC force generation to produce the sharp frequency selectivity of mammalian hearing.

Publisher

American Physiological Society

Subject

Physiology,General Neuroscience

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1. Effect of Age-Related Hearing Loss on Mice Cochlear Structures Based on Optical Coherence Tomography;12th Asian-Pacific Conference on Medical and Biological Engineering;2024

2. Compressed sensing on displacement signals measured with optical coherence tomography;Biomedical Optics Express;2023-10-02

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4. On the Tonotopy of the Low-Frequency Region of the Cochlea;The Journal of Neuroscience;2023-05-24

5. Estimating cochlear impulse responses using frequency sweeps;The Journal of the Acoustical Society of America;2023-04-01

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