Literature DB >> 28877495

Wave Mechanics of the Vestibular Semicircular Canals.

Marta M Iversen1, Richard D Rabbitt2.   

Abstract

The semicircular canals are biomechanical sensors responsible for detecting and encoding angular motion of the head in 3D space. Canal afferent neurons provide essential inputs to neural circuits responsible for representation of self-position/orientation in space, and to compensatory circuits including the vestibulo-ocular and vestibulo-collic reflex arcs. In this work we derive, to our knowledge, a new 1D mathematical model quantifying canal biomechanics based on the morphology, dynamics of the inner ear fluids, and membranous labyrinth deformability. The model takes the form of a dispersive wave equation and predicts canal responses to angular motion, sound, and mechanical stimulation. Numerical simulations were carried out for the morphology of the human lateral canal using known physical properties of the endolymph and perilymph in three diverse conditions: surgical plugging, rotation, and mechanical indentation. The model reproduces frequency-dependent attenuation and phase shift in cases of canal plugging. During rotation, duct deformability extends the frequency bandwidth and enhances the high frequency gain. Mechanical indentation of the membranous duct at high frequencies evokes traveling waves that move away from the location of indentation and at low frequencies compels endolymph displacement along the canal. These results demonstrate the importance of the conformal perilymph-filled bony labyrinth to pressure changes and to high frequency sound and vibration. Published by Elsevier Inc.

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Year:  2017        PMID: 28877495      PMCID: PMC5658742          DOI: 10.1016/j.bpj.2017.08.001

Source DB:  PubMed          Journal:  Biophys J        ISSN: 0006-3495            Impact factor:   4.033


  72 in total

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5.  A method for controlled mechanical stimulation of single semicircular canals.

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6.  Sound- and/or pressure-induced vertigo due to bone dehiscence of the superior semicircular canal.

Authors:  L B Minor; D Solomon; J S Zinreich; D S Zee
Journal:  Arch Otolaryngol Head Neck Surg       Date:  1998-03

Review 7.  Evolution of vertebrate mechanosensory hair cells and inner ears: toward identifying stimuli that select mutation driven altered morphologies.

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9.  Clinical, experimental, and theoretical investigations of the effect of superior semicircular canal dehiscence on hearing mechanisms.

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10.  Assessing morphology and function of the semicircular duct system: introducing new in-situ visualization and software toolbox.

Authors:  R David; A Stoessel; A Berthoz; F Spoor; D Bennequin
Journal:  Sci Rep       Date:  2016-09-08       Impact factor: 4.379

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  7 in total

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4.  Sound abnormally stimulates the vestibular system in canal dehiscence syndrome by generating pathological fluid-mechanical waves.

Authors:  M M Iversen; H Zhu; W Zhou; C C Della Santina; J P Carey; R D Rabbitt
Journal:  Sci Rep       Date:  2018-07-06       Impact factor: 4.379

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7.  Genotype-Phenotype Correlation Study in a Large Series of Patients Carrying the p.Pro51Ser (p.P51S) Variant in COCH (DFNA9) Part II: A Prospective Cross-Sectional Study of the Vestibular Phenotype in 111 Carriers.

Authors:  Sebastien P F JanssensdeVarebeke; Julie Moyaert; Erik Fransen; Britt Bulen; Celine Neesen; Katrien Devroye; Raymond van de Berg; Ronald J E Pennings; Vedat Topsakal; Olivier Vanderveken; Guy Van Camp; Vincent Van Rompaey
Journal:  Ear Hear       Date:  2021 Nov-Dec 01       Impact factor: 3.570

  7 in total

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