Literature DB >> 15613632

Evidence of piezoelectric resonance in isolated outer hair cells.

R D Rabbitt1, H E Ayliffe, D Christensen, K Pamarthy, C Durney, S Clifford, W E Brownell.   

Abstract

Our results demonstrate high-frequency electrical resonances in outer hair cells (OHCs) exhibiting features analogous to classical piezoelectric transducers. The fundamental (first) resonance frequency averaged f(n) approximately 13 kHz (Q approximately 1.7). Higher-order resonances were also observed. To obtain these results, OHCs were positioned in a custom microchamber and subjected to stimulating electric fields along the axis of the cell (1-100 kHz, 4-16 mV/80 microm). Electrodes embedded in the side walls of the microchamber were used in a voltage-divider configuration to estimate the electrical admittance of the top portion of the cell-loaded chamber (containing the electromotile lateral wall) relative to the lower portion (containing the basal plasma membrane). This ratio exhibited resonance-like electrical tuning. Resonance was also detected independently using a secondary 1-MHz radio-frequency interrogation signal applied transversely across the cell diameter. The radio-frequency interrogation revealed changes in the transverse electric impedance modulated by the axial stimulus. Modulation of the transverse electric impedance was particularly pronounced near the resonant frequencies. OHCs used in our study were isolated from the apical region of the guinea pig cochlea, a region that responds exclusively to low-frequency acoustic stimuli. In this sense, electrical resonances we observed in vitro were at least an order of magnitude higher (ultrasonic) than the best physiological frequency of the same OHCs under acoustic stimuli in vivo. These resonance data further support the piezoelectric theory of OHC function, and implicate piezoelectricity in the broad-band electromechanical behavior of OHCs underlying mammalian cochlear function.

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Year:  2004        PMID: 15613632      PMCID: PMC1305275          DOI: 10.1529/biophysj.104.050872

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


  28 in total

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Authors:  Robert Fettiplace; Anthony J Ricci
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4.  Whole cell currents and mechanical responses of isolated outer hair cells.

Authors:  J Santos-Sacchi; J P Dilger
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5.  A fast motile response in guinea-pig outer hair cells: the cellular basis of the cochlear amplifier.

Authors:  J F Ashmore
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6.  Evoked mechanical responses of isolated cochlear outer hair cells.

Authors:  W E Brownell; C R Bader; D Bertrand; Y de Ribaupierre
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7.  High-frequency outer hair cell motility: corrections and addendum.

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8.  High-frequency motility of outer hair cells and the cochlear amplifier.

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9.  A piezoelectric model of outer hair cell function.

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10.  Prestin is required for electromotility of the outer hair cell and for the cochlear amplifier.

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  14 in total

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10.  Power efficiency of outer hair cell somatic electromotility.

Authors:  Richard D Rabbitt; Sarah Clifford; Kathryn D Breneman; Brenda Farrell; William E Brownell
Journal:  PLoS Comput Biol       Date:  2009-07-24       Impact factor: 4.475

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