Literature DB >> 17716844

Transmission of infrasonic pressure waves from cerebrospinal to intralabyrinthine fluids through the human cochlear aqueduct: Non-invasive measurements with otoacoustic emissions.

Raghida Traboulsi1, Paul Avan.   

Abstract

The cochlear aqueduct connecting intralabyrinthine and cerebrospinal fluids (CSF) acts as a low-pass filter that should be able to transmit infrasonic pressure waves from CSF to cochlea. Recent experiments have shown that otoacoustic emissions generated at 1kHz respond to pressure-related stapes impedance changes with a change in phase relative to the generator tones, and provide a non-invasive means of assessing intracochlear pressure changes. In order to characterize the transmission to the cochlea of CSF pressure waves due to respiration, the distortion-product otoacoustic emissions (DPOAE) of 12 subjects were continuously monitored around 1kHz at a rate of 6.25epochs/s, and their phase relative to the stimulus tones was extracted. The subjects breathed normally, in different postures, while thoracic movements were recorded so as to monitor respiration. A correlate of respiration was found in the time variation of DPOAE phase, with an estimated mean amplitude of 10 degrees , i.e. 60mm water, suggesting little attenuation across the aqueduct. Its phase lag relative to thoracic movements varied between 0 degrees and -270 degrees . When fed into a two-compartment model of CSF and labyrinthine spaces, these results suggest that respiration rate at rest is just above the resonance frequency of the CSF compartment, and just below the corner frequency of the cochlear-aqueduct low-pass filter, in line with previous estimates from temporal bone and intracranial measurements. The fact that infrasonic CSF waves can be monitored through the cochlea opens diagnostic possibilities in neurology.

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Year:  2007        PMID: 17716844     DOI: 10.1016/j.heares.2007.06.012

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


  5 in total

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2.  Noninvasive detection of alarming intracranial pressure changes by auditory monitoring in early management of brain injury: a prospective invasive versus noninvasive study.

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Journal:  Crit Care       Date:  2017-02-21       Impact factor: 9.097

Review 3.  Review: pathophysiology of intracranial hypertension and noninvasive intracranial pressure monitoring.

Authors:  Nicolas Canac; Kian Jalaleddini; Samuel G Thorpe; Corey M Thibeault; Robert B Hamilton
Journal:  Fluids Barriers CNS       Date:  2020-06-23

4.  The tympanic membrane displacement analyser for monitoring intracranial pressure in children.

Authors:  Samson Gwer; Victoria Sheward; Anthony Birch; Robert Marchbanks; Richard Idro; Charles R Newton; Fenella J Kirkham; Jean-Pierre Lin; Ming Lim
Journal:  Childs Nerv Syst       Date:  2013-01-30       Impact factor: 1.475

Review 5.  A Review of the Possible Perceptual and Physiological Effects of Wind Turbine Noise.

Authors:  Simon Carlile; John L Davy; David Hillman; Kym Burgemeister
Journal:  Trends Hear       Date:  2018 Jan-Dec       Impact factor: 3.293

  5 in total

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