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PMID: 31069593 Published · ppublish English Journal Article

Asymmetric cupula displacement due to endolymph vortex in the human semicircular canal.

Biomechanics and modeling in mechanobiology ·Vol. 18 ·No. 6 ·2019-12-00 ·页码 1577-1590

Goyens J, Pourquie MJBM, Poelma C, Westerweel J

Abstract

The vestibular system in the inner ear senses angular head manoeuvres by endolymph fluid which deforms a gelatinous sensory structure (the cupula). We constructed computer models that include both the endolymph flow (using CFD modelling), the cupula deformation (using FEM modelling), and the interaction between both (using fluid-structure interaction modelling). In the wide utricle, we observe an endolymph vortex. In the initial time steps, both the displacement of the cupula and its restorative forces are still small. As a result, the endolymph vortex causes the cupula to deform asymmetrically in an S-shape. The asymmetric deflection increases the cupula strain near the crista and, as a result, enhances the sensitivity of the vestibular system. Throughout the head manoeuvre, the maximal cupula strain is located at the centre of the crista. The hair cells at the crista centre supply irregularly spiking afferents, which are more sensitive than the afferents from the periphery. Hence, the location of the maximal strain at the crista may also increase the sensitivity of the semicircular canal, but this remains to be tested. The cupula overshoots its relaxed position in a simulation of the Dix-Hallpike head manoeuvre (3 s in total). A much faster head manoeuvre of 0.222 s showed to be too short to cause substantial cupula overshoot, because the cupula time scale of both models (estimated to be 3.3 s) is an order of magnitude larger than the duration of this manoeuvre.

Keywords
Balance Computational fluid dynamics Finite element model Fluid–structure interaction Navier–Stokes equations Time constant Vestibular system
MeSH 主题词
Adult Endolymph/physiology Female Humans Male Models, Biological Pressure Semicircular Canals/pathology Stress, Mechanical
作者与单位
共 4 位作者,点击展开单位 / ORCID
Goyens J ORCID
Laboratory of Functional Morphology, University of Antwerp, Universiteitsplein 1, 2610, Wilrijk, Belgium. [email protected].
Pourquie M J B M
Laboratory for Aero and Hydrodynamics, Delft University of Technology, Mekelweg 2, 2628 LD, Delft, The Netherlands.
Poelma C
Laboratory for Aero and Hydrodynamics, Delft University of Technology, Mekelweg 2, 2628 LD, Delft, The Netherlands.
Westerweel J
Laboratory for Aero and Hydrodynamics, Delft University of Technology, Mekelweg 2, 2628 LD, Delft, The Netherlands.
Article Info
Journal
Biomechanics and modeling in mechanobiology
Abbr.
Biomech Model Mechanobiol
ISSN
1617-7940
Corresponding email
Published
2019-12-00
电子出版
2019-00-08
页码
1577-1590
Language
English
Country/Region
Germany
NLM ID
101135325
基金资助
Fonds Wetenschappelijk Onderzoek · G0E02.14N
Fonds Wetenschappelijk Onderzoek · 12R5118N
Fonds Wetenschappelijk Onderzoek · V428716N
Fonds Wetenschappelijk Onderzoek · 1504018N
Universiteit Antwerpen · BOF/KP 24346
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