Literature DB >> 10591211

Direct measurement of intra-cochlear pressure waves.

E S Olson1.   

Abstract

The cochlear travelling wave is fundamental to the ability of the mammalian auditory system to resolve frequency. The seashell-shaped outer bone of the cochlea (the auditory inner ear) contains a spiral of cochlear fluid and the sensory tissue known as the cochlear partition. Sound travels down the ear canal to the eardrum, causing its flexible tympanic membrane to vibrate. This vibration is transmitted to the cochlea via the ossides. Motion of the stapes (the stirrup ossicle) sets the cochlear fluid in motion, which in turn sets the cochlear partition near the states in motion. The motion of the cochlear partition ripples down the cochlear spiral as a travelling wave, stimulating the cochlea's sensory hair cells. The wave peaks near the base (the stapes end) of the cochlea for high frequency tones and near the apex for low frequencies. The fundamental elements of the cochlear travelling wave are fluid pressure and motion and partition forces and motion. However, the wave's direct experimental study has to date relied almost solely on measurements of the partition motion. Here I report finely spaced measurements of intracochlear pressure close to the partition, which reveal the fluid component of the cochlear wave. The penetration depth of the wave is very limited, approximately 15 microm. Over a range of frequencies at least an octave wide, the depth is independent of frequency.

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Year:  1999        PMID: 10591211     DOI: 10.1038/990092

Source DB:  PubMed          Journal:  Nature        ISSN: 0028-0836            Impact factor:   49.962


  46 in total

Review 1.  Mechanics of the mammalian cochlea.

Authors:  L Robles; M A Ruggero
Journal:  Physiol Rev       Date:  2001-07       Impact factor: 37.312

2.  Longitudinal pattern of basilar membrane vibration in the sensitive cochlea.

Authors:  Tianying Ren
Journal:  Proc Natl Acad Sci U S A       Date:  2002-12-02       Impact factor: 11.205

3.  Otoacoustic emissions from residual oscillations of the cochlear basilar membrane in a human ear model.

Authors:  Renato Nobili; Ales Vetesnik; Lorenzo Turicchia; Fabio Mammano
Journal:  J Assoc Res Otolaryngol       Date:  2003-07-10

4.  The roles of the external, middle, and inner ears in determining the bandwidth of hearing.

Authors:  Mario A Ruggero; Andrei N Temchin
Journal:  Proc Natl Acad Sci U S A       Date:  2002-09-18       Impact factor: 11.205

5.  Intracochlear Scala Media Pressure Measurement: Implications for Models of Cochlear Mechanics.

Authors:  Sushrut S Kale; Elizabeth S Olson
Journal:  Biophys J       Date:  2015-12-15       Impact factor: 4.033

6.  Mechanical responses of the organ of corti to acoustic and electrical stimulation in vitro.

Authors:  Dylan K Chan; A J Hudspeth
Journal:  Biophys J       Date:  2005-09-16       Impact factor: 4.033

7.  Two-tone distortion in intracochlear pressure.

Authors:  Wei Dong; Elizabeth S Olson
Journal:  J Acoust Soc Am       Date:  2005-05       Impact factor: 1.840

8.  An experimental study into the acousto-mechanical effects of invading the cochlea.

Authors:  Wei Dong; Nigel P Cooper
Journal:  J R Soc Interface       Date:  2006-08-22       Impact factor: 4.118

9.  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

10.  Laser-induced collagen remodeling and deposition within the basilar membrane of the mouse cochlea.

Authors:  Gentiana I Wenzel; Bahman Anvari; Amaan Mazhar; Brian Pikkula; John S Oghalai
Journal:  J Biomed Opt       Date:  2007 Mar-Apr       Impact factor: 3.170

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