Literature DB >> 30015103

Impedances of the inner and middle ear estimated from intracochlear sound pressures in normal human temporal bones.

Darcy L Frear1, Xiying Guan2, Christof Stieger3, John J Rosowski4, Hideko Heidi Nakajima5.   

Abstract

For almost a decade, we have measured intracochlear sound pressures evoked by air conducted (AC) sound presented to the ear canal in many fresh human cadaveric specimens. Similar measurements were also obtained during round window (RW) mechanical stimulation in multiple specimens. In the present study, we use our accumulated data of intracochlear pressures and simultaneous velocity measurements of the stapes or RW to determine acoustic impedances of the cochlear partition, RW, and the leakage paths from scala vestibuli and scala tympani, as well as the reverse middle ear impedance. With these impedances, we develop a computational lumped-element model of the normal ear that illuminates fundamental mechanisms of sound transmission. To calculate the impedances for our model, we use data that passes strict inclusion criteria of: (a) normal middle-ear transfer function defined as the ratio of stapes velocity to ear-canal sound pressure, (b) no evidence of air within the inner ear, and (c) tight control of the pressure sensor sensitivity. After this strict screening, updated normal means, as well as individual representative data, of ossicular velocities and intracochlear pressures for AC and RW stimulation are used to calculate impedances. This work demonstrates the existence and the value of physiological acoustic leak impedances that can sometimes contribute significantly to sound transmission for some stimulation modalities. This model allows understanding of human sound transmission mechanisms for various sound stimulation methods such as AC, RW, and bone conduction, as well as sound transmission related to otoacoustic emissions.
Copyright © 2018 Elsevier B.V. All rights reserved.

Entities:  

Keywords:  Impedance modeling; Intracochlear pressure

Mesh:

Year:  2018        PMID: 30015103      PMCID: PMC6923800          DOI: 10.1016/j.heares.2018.06.019

Source DB:  PubMed          Journal:  Hear Res        ISSN: 0378-5955            Impact factor:   3.208


  31 in total

1.  Effect of freezing and thawing on stapes-cochlear input impedance in human temporal bones.

Authors:  M E Ravicz; S N Merchant; J J Rosowski
Journal:  Hear Res       Date:  2000-12       Impact factor: 3.208

2.  Three-dimensional stapes footplate motion in human temporal bones.

Authors:  Naohito Hato; Stefan Stenfelt; Richard L Goode
Journal:  Audiol Neurootol       Date:  2003 May-Jun       Impact factor: 1.854

3.  Measurements of human middle ear forward and reverse acoustics: implications for otoacoustic emissions.

Authors:  Sunil Puria
Journal:  J Acoust Soc Am       Date:  2003-05       Impact factor: 1.840

4.  Fluid volume displacement at the oval and round windows with air and bone conduction stimulation.

Authors:  Stefan Stenfelt; Naohito Hato; Richard L Goode
Journal:  J Acoust Soc Am       Date:  2004-02       Impact factor: 1.840

5.  Complex stapes motions in human ears.

Authors:  Jae Hoon Sim; Michail Chatzimichalis; Michael Lauxmann; Christof Röösli; Albrecht Eiber; Alexander M Huber
Journal:  J Assoc Res Otolaryngol       Date:  2010-02-18

6.  The equality of volume displacements in the inner ear windows.

Authors:  M Kringlebotn
Journal:  J Acoust Soc Am       Date:  1995-07       Impact factor: 1.840

7.  Input impedance of the cochlea in cat.

Authors:  T J Lynch; V Nedzelnitsky; W T Peake
Journal:  J Acoust Soc Am       Date:  1982-07       Impact factor: 1.840

8.  Evaluation of round window stimulation using the floating mass transducer by intracochlear sound pressure measurements in human temporal bones.

Authors:  Hideko Heidi Nakajima; Wei Dong; Elizabeth S Olson; John J Rosowski; Michael E Ravicz; Saumil N Merchant
Journal:  Otol Neurotol       Date:  2010-04       Impact factor: 2.311

9.  Measurements of stapes velocity in live human ears.

Authors:  Wade Chien; John J Rosowski; Michael E Ravicz; Steven D Rauch; Jennifer Smullen; Saumil N Merchant
Journal:  Hear Res       Date:  2008-12-11       Impact factor: 3.208

10.  Differential intracochlear sound pressure measurements in normal human temporal bones.

Authors:  Hideko Heidi Nakajima; Wei Dong; Elizabeth S Olson; Saumil N Merchant; Michael E Ravicz; John J Rosowski
Journal:  J Assoc Res Otolaryngol       Date:  2008-12-09
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  7 in total

Review 1.  [Coupling of active middle ear implants-biomechanical aspects].

Authors:  M Bornitz; N Lasurashvili; M Neudert; T Beleites; T Zahnert
Journal:  HNO       Date:  2021-02-10       Impact factor: 1.284

2.  A lumped-element model of the chinchilla middle ear.

Authors:  Peter Bowers; John J Rosowski
Journal:  J Acoust Soc Am       Date:  2019-04       Impact factor: 1.840

3.  Superior Canal Dehiscence Similarly Affects Cochlear Pressures in Temporal Bones and Audiograms in Patients.

Authors:  Y Song Cheng; Stefan Raufer; Xiying Guan; Christopher F Halpin; Daniel J Lee; Hideko Heidi Nakajima
Journal:  Ear Hear       Date:  2020 Jul/Aug       Impact factor: 3.570

4.  Intracochlear Sound Pressure Measurements in Normal Human Temporal Bones During Bone Conduction Stimulation.

Authors:  Christof Stieger; Xiying Guan; Rosemary B Farahmand; Brent F Page; Julie P Merchant; Defne Abur; Hideko Heidi Nakajima
Journal:  J Assoc Res Otolaryngol       Date:  2018-08-31

5.  Mouse middle-ear forward and reverse acoustics.

Authors:  Hamid Motallebzadeh; Sunil Puria
Journal:  J Acoust Soc Am       Date:  2021-04       Impact factor: 1.840

6.  Initial Method for Characterization of Tympanic Membrane Drug Permeability in Human Temporal Bones In Situ.

Authors:  Samuel Early; Rong Yang; Xiyu Li; Zipei Zhang; Jens C van der Valk; Xiaojie Ma; Daniel S Kohane; Konstantina M Stankovic
Journal:  Front Neurol       Date:  2021-02-23       Impact factor: 4.003

7.  Bone-conduction hyperacusis induced by superior canal dehiscence in human: the underlying mechanism.

Authors:  Xiying Guan; Y Song Cheng; Deepa J Galaiya; John J Rosowski; Daniel J Lee; Hideko Heidi Nakajima
Journal:  Sci Rep       Date:  2020-10-06       Impact factor: 4.379

  7 in total

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