Literature DB >> 26333018

Cochlear Implant Electrode Effect on Sound Energy Transfer Within the Cochlea During Acoustic Stimulation.

Nathaniel T Greene1, Jameson K Mattingly, Herman A Jenkins, Daniel J Tollin, James R Easter, Stephen P Cass.   

Abstract

HYPOTHESIS: Cochlear implants (CIs) designed for hearing preservation will not alter mechanical properties of the middle and inner ears as measured by intracochlear pressure (P(IC)) and stapes velocity (Vstap).
BACKGROUND: CIs designed to provide combined electroacoustic stimulation are now available. To maintain functional acoustic hearing, it is important to know if a CI electrode can alter middle or inner ear mechanics because any alteration could contribute to elevated low-frequency thresholds in electroacoustic stimulation patients.
METHODS: Seven human cadaveric temporal bones were prepared, and pure-tone stimuli from 120 Hz to 10 kHz were presented at a range of intensities up to 110 dB sound pressure level. P(IC) in the scala vestibuli (P(SV)) and tympani (PST) were measured with fiber-optic pressure sensors concurrently with VStap using laser Doppler vibrometry. Five CI electrodes from two different manufacturers with varying dimensions were inserted via a round window approach at six different depths (16-25 mm).
RESULTS: The responses of P(IC) and VStap to acoustic stimulation were assessed as a function of stimulus frequency, normalized to sound pressure level in the external auditory canal, at baseline and electrode-inserted conditions. Responses measured with electrodes inserted were generally within approximately 5 dB of baseline, indicating little effect of CI electrode insertion on P(IC) and VStap. Overall, mean differences across conditions were small for all responses, and no substantial differences were consistently visible across electrode types.
CONCLUSION: Results suggest that the influence of a CI electrode on middle and inner ear mechanics is minimal despite variation in electrode lengths and configurations.

Entities:  

Mesh:

Year:  2015        PMID: 26333018      PMCID: PMC4575243          DOI: 10.1097/MAO.0000000000000838

Source DB:  PubMed          Journal:  Otol Neurotol        ISSN: 1531-7129            Impact factor:   2.311


  43 in total

1.  Direct measurement of intra-cochlear pressure waves.

Authors:  E S Olson
Journal:  Nature       Date:  1999-12-02       Impact factor: 49.962

2.  Effects of draining cochlear fluids on stapes displacement in human middle-ear models.

Authors:  R M Lord; E W Abel; Z Wang; R P Mills
Journal:  J Acoust Soc Am       Date:  2001-12       Impact factor: 1.840

3.  Three-dimensional modeling of middle ear biomechanics and its applications.

Authors:  Rong Z Gan; Qunli Sun; Robert K Dyer; Kuang-Hua Chang; Kenneth J Dormer
Journal:  Otol Neurotol       Date:  2002-05       Impact factor: 2.311

4.  Speech recognition in noise for cochlear implant listeners: benefits of residual acoustic hearing.

Authors:  Christopher W Turner; Bruce J Gantz; Corina Vidal; Amy Behrens; Belinda A Henry
Journal:  J Acoust Soc Am       Date:  2004-04       Impact factor: 1.840

5.  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

6.  Holographic vibration analysis of the ossicular chain.

Authors:  T Gundersen; K Hogmoen
Journal:  Acta Otolaryngol       Date:  1976 Jul-Aug       Impact factor: 1.494

7.  Electric-acoustic stimulation of the auditory system. New technology for severe hearing loss.

Authors:  C von Ilberg; J Kiefer; J Tillein; T Pfenningdorff; R Hartmann; E Stürzebecher; R Klinke
Journal:  ORL J Otorhinolaryngol Relat Spec       Date:  1999 Nov-Dec       Impact factor: 1.538

8.  Development and evaluation of an improved cochlear implant electrode design for electric acoustic stimulation.

Authors:  Oliver Adunka; Jan Kiefer; Marc H Unkelbach; Thomas Lehnert; Wolfgang Gstoettner
Journal:  Laryngoscope       Date:  2004-07       Impact factor: 3.325

9.  Histologic evaluation of the tissue seal and biologic response around cochlear implant electrodes in the human.

Authors:  Joseph B Nadol; Donald K Eddington
Journal:  Otol Neurotol       Date:  2004-05       Impact factor: 2.311

10.  Combining acoustic and electrical hearing.

Authors:  Bruce J Gantz; Christopher W Turner
Journal:  Laryngoscope       Date:  2003-10       Impact factor: 3.325

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  19 in total

1.  Intracochlear Measurements of Interaural Time and Level Differences Conveyed by Bilateral Bone Conduction Systems.

Authors:  Nyssa F Farrell; Renee M Banakis Hartl; Victor Benichoux; Andrew D Brown; Stephen P Cass; Daniel J Tollin
Journal:  Otol Neurotol       Date:  2017-12       Impact factor: 2.311

2.  Intracochlear pressure measurements during acoustic shock wave exposure.

Authors:  Nathaniel T Greene; Mohamed A Alhussaini; James R Easter; Theodore F Argo; Tim Walilko; Daniel J Tollin
Journal:  Hear Res       Date:  2018-05-19       Impact factor: 3.208

3.  Stapes displacement and intracochlear pressure in response to very high level, low frequency sounds.

Authors:  Nathaniel T Greene; Herman A Jenkins; Daniel J Tollin; James R Easter
Journal:  Hear Res       Date:  2017-02-09       Impact factor: 3.208

4.  Air- and Bone-Conducted Sources of Feedback With an Active Middle Ear Implant.

Authors:  Renee M Banakis Hartl; James R Easter; Mohamed A Alhussaini; Daniel J Tollin; Herman A Jenkins
Journal:  Ear Hear       Date:  2019 May/Jun       Impact factor: 3.570

5.  Drill-induced Cochlear Injury During Otologic Surgery: Intracochlear Pressure Evidence of Acoustic Trauma.

Authors:  Renee M Banakis Hartl; Jameson K Mattingly; Nathaniel T Greene; Nyssa F Farrell; Samuel P Gubbels; Daniel J Tollin
Journal:  Otol Neurotol       Date:  2017-08       Impact factor: 2.311

6.  Wideband Acoustic Immittance in Cochlear Implant Recipients: Reflectance and Stapedial Reflexes.

Authors:  Rachel A Scheperle; Joshua J Hajicek
Journal:  Ear Hear       Date:  2020 Jul/Aug       Impact factor: 3.570

7.  Intracochlear Pressures in Simulated Otitis Media With Effusion: A Temporal Bone Study.

Authors:  Mohamed A Alhussaini; Renee M Banakis Hartl; Victor Benichoux; Daniel J Tollin; Herman A Jenkins; Nathaniel T Greene
Journal:  Otol Neurotol       Date:  2018-08       Impact factor: 2.311

8.  A Preliminary Investigation of the Air-Bone Gap: Changes in Intracochlear Sound Pressure With Air- and Bone-conducted Stimuli After Cochlear Implantation.

Authors:  Renee M Banakis Hartl; Jameson K Mattingly; Nathaniel T Greene; Herman A Jenkins; Stephen P Cass; Daniel J Tollin
Journal:  Otol Neurotol       Date:  2016-10       Impact factor: 2.311

9.  Intracochlear Pressure Transients During Cochlear Implant Electrode Insertion.

Authors:  Nathaniel T Greene; Jameson K Mattingly; Renee M Banakis Hartl; Daniel J Tollin; Stephen P Cass
Journal:  Otol Neurotol       Date:  2016-12       Impact factor: 2.311

10.  Numerical analysis of intracochlear mechanical auditory stimulation using piezoelectric bending actuators.

Authors:  Daniel Schurzig; Sebastian Schwarzendahl; Jörg Wallaschek; Wouter J van Drunen; Thomas S Rau; Thomas Lenarz; Omid Majdani
Journal:  Med Biol Eng Comput       Date:  2017-09-13       Impact factor: 2.602

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