Literature DB >> 16428277

Mechanical properties and consequences of stereocilia and extracellular links in vestibular hair bundles.

Jong-Hoon Nam1, John R Cotton, Ellengene H Peterson, Wally Grant.   

Abstract

Although knowledge of the fine structure of vestibular hair bundles is increasing, the mechanical properties and functional significance of those structures remain unclear. In 2004, Bashtanov and colleagues reported the contribution of different extracellular links to bundle stiffness. We simulated Bashtanov's experimental protocol using a three-dimensional finite element bundle model with geometry measured from a typical striolar hair cell. Unlike any previous models, we separately consider two types of horizontal links: shaft links and upper lateral links. Our most important results are as follows. First, we identified the material properties required to match Bashtanov's experiment: stereocilia Young's modulus of 0.74 GPa, tip link assembly (gating spring) stiffness of 5,300 pN/microm, and the combined stiffness of shaft links binding two adjacent stereocilia of 750 approximately 2,250 pN/microm. Second, we conclude that upper lateral links are likely to have nonlinear mechanical properties: they have minimal stiffness during small bundle deformations but stiffen as the bundle deflects further. Third, we estimated the stiffness of the gating spring based on our realistic three-dimensional bundle model rather than a conventional model relying on the parallel arrangement assumption. Our predicted stiffness of the gating spring was greater than the previous estimation.

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Year:  2006        PMID: 16428277      PMCID: PMC1414556          DOI: 10.1529/biophysj.105.066027

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


  49 in total

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9.  The mechanical properties of chick (Gallus domesticus) sensory hair bundles: relative contributions of structures sensitive to calcium chelation and subtilisin treatment.

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10.  Structure of the stereocilia side links and morphology of auditory hair bundle in relation to noise exposure in the chinchilla.

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  15 in total

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4.  A virtual hair cell, I: addition of gating spring theory into a 3-D bundle mechanical model.

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5.  Utricular afferents: morphology of peripheral terminals.

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Review 6.  Multiscale modeling of mechanotransduction in the utricle.

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8.  The dimensions and composition of stereociliary rootlets in mammalian cochlear hair cells: comparison between high- and low-frequency cells and evidence for a connection to the lateral membrane.

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9.  Biomechanical measurement of kinocilium.

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Journal:  Methods Enzymol       Date:  2013       Impact factor: 1.600

10.  Hair cell bundles: flexoelectric motors of the inner ear.

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