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Adaptation in auditory hair cells
scientific article
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scholarly article
1 reference
stated in
Europe PubMed Central
PubMed ID
12965292
retrieved
7 August 2017
review article
1 reference
stated in
Europe PubMed Central
title
Adaptation in auditory hair cells
(English)
1 reference
stated in
Europe PubMed Central
PubMed ID
12965292
retrieved
7 August 2017
author
Robert Fettiplace
series ordinal
1
object named as
Robert Fettiplace
1 reference
stated in
Europe PubMed Central
PubMed ID
12965292
retrieved
7 August 2017
author name string
Anthony J Ricci
series ordinal
2
1 reference
stated in
Europe PubMed Central
PubMed ID
12965292
retrieved
7 August 2017
publication date
1 August 2003
1 reference
stated in
Europe PubMed Central
PubMed ID
12965292
retrieved
7 August 2017
published in
Current Opinion in Neurobiology
1 reference
stated in
Europe PubMed Central
PubMed ID
12965292
retrieved
7 August 2017
volume
13
1 reference
stated in
Europe PubMed Central
PubMed ID
12965292
retrieved
7 August 2017
issue
4
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stated in
Europe PubMed Central
PubMed ID
12965292
retrieved
7 August 2017
page(s)
446-451
1 reference
stated in
Europe PubMed Central
PubMed ID
12965292
retrieved
7 August 2017
cites work
How the ear's works work
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Compliance of the hair bundle associated with gating of mechanoelectrical transduction channels in the bullfrog's saccular hair cell
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High-resolution structure of hair-cell tip links
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The hair cell's transduction channel
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Adaptation in hair cells.
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7 January 2021
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The effects of calcium buffering and cyclic AMP on mechano-electrical transduction in turtle auditory hair cells
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Clues to the cochlear amplifier from the turtle ear.
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Voltage dependence of adaptation and active bundle movement in bullfrog saccular hair cells
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An active motor model for adaptation by vertebrate hair cells
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7 January 2021
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Two components of transducer adaptation in auditory hair cells
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7 January 2021
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A chemical-genetic strategy implicates myosin-1c in adaptation by hair cells.
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Mechanoelectrical and Voltage-Gated Ion Channels in Mammalian Vestibular Hair Cells
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7 January 2021
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Mechano-electrical transducer currents in hair cells of the cultured neonatal mouse cochlea
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https://api.crossref.org/works/10.1016%2FS0959-4388%2803%2900094-1
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7 January 2021
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The endogenous calcium buffer and the time course of transducer adaptation in auditory hair cells.
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https://api.crossref.org/works/10.1016%2FS0959-4388%2803%2900094-1
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7 January 2021
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Activation and adaptation of transducer currents in turtle hair cells
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7 January 2021
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Calcium permeation of the turtle hair cell mechanotransducer channel and its relation to the composition of endolymph
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A model for amplification of hair-bundle motion by cyclical binding of Ca2+ to mechanoelectrical-transduction channels
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reference URL
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7 January 2021
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Mechanical relaxation of the hair bundle mediates adaptation in mechanoelectrical transduction by the bullfrog's saccular hair cell
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7 January 2021
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Calmodulin controls adaptation of mechanoelectrical transduction by hair cells of the bullfrog's sacculus
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An immunogold investigation of the distribution of calmodulin in the apex of cochlear hair cells
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Crossref
reference URL
https://api.crossref.org/works/10.1016%2FS0959-4388%2803%2900094-1
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Myosin-1c interacts with hair-cell receptors through its calmodulin-binding IQ domains.
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Crossref
reference URL
https://api.crossref.org/works/10.1016%2FS0959-4388%2803%2900094-1
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7 January 2021
based on heuristic
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Active hair bundle motion linked to fast transducer adaptation in auditory hair cells.
1 reference
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Crossref
reference URL
https://api.crossref.org/works/10.1016%2FS0959-4388%2803%2900094-1
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7 January 2021
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Rapid, active hair bundle movements in hair cells from the bullfrog's sacculus
1 reference
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Crossref
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https://api.crossref.org/works/10.1016%2FS0959-4388%2803%2900094-1
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7 January 2021
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Mechanisms of active hair bundle motion in auditory hair cells.
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Crossref
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https://api.crossref.org/works/10.1016%2FS0959-4388%2803%2900094-1
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7 January 2021
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Nonlinear mechanical responses of mouse cochlear hair bundles
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7 January 2021
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Gating energies and forces of the mammalian hair cell transducer channel and related hair bundle mechanics.
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Unconventional myosins in inner-ear sensory epithelia
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From flies' eyes to our ears: mutations in a human class III myosin cause progressive nonsyndromic hearing loss DFNB30
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7 January 2021
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Reduced climbing and increased slipping adaptation in cochlear hair cells of mice with Myo7a mutations
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Localization of myosin-Ibeta near both ends of tip links in frog saccular hair cells
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https://api.crossref.org/works/10.1016%2FS0959-4388%2803%2900094-1
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7 January 2021
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Myosin Ibeta is located at tip link anchors in vestibular hair bundles.
1 reference
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Crossref
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https://api.crossref.org/works/10.1016%2FS0959-4388%2803%2900094-1
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7 January 2021
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Engineering of the myosin-ibeta nucleotide-binding pocket to create selective sensitivity to N(6)-modified ADP analogs
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Myosin and adaptation by hair cells
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Myosin VI is an actin-based motor that moves backwards
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7 January 2021
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Termination of phototransduction requires binding of the NINAC myosin III and the PDZ protein INAD.
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7 January 2021
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Myosin VIIa, harmonin and cadherin 23, three Usher I gene products that cooperate to shape the sensory hair cell bundle
1 reference
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7 January 2021
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The motor and tail regions of myosin XV are critical for normal structure and function of auditory and vestibular hair cells
1 reference
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7 January 2021
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Hair-bundle movements elicited by transepithelial electrical stimulation of hair cells in the sacculus of the bullfrog
1 reference
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Crossref
reference URL
https://api.crossref.org/works/10.1016%2FS0959-4388%2803%2900094-1
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7 January 2021
based on heuristic
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In vivo evidence for a cochlear amplifier in the hair-cell bundle of lizards
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Crossref
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https://api.crossref.org/works/10.1016%2FS0959-4388%2803%2900094-1
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7 January 2021
based on heuristic
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Differences in mechano-transducer channel kinetics underlie tonotopic distribution of fast adaptation in auditory hair cells
1 reference
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Crossref
reference URL
https://api.crossref.org/works/10.1016%2FS0959-4388%2803%2900094-1
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7 January 2021
based on heuristic
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Two adaptation processes in auditory hair cells together can provide an active amplifier
1 reference
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reference URL
https://api.crossref.org/works/10.1016%2FS0959-4388%2803%2900094-1
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7 January 2021
based on heuristic
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Mechanics of the mammalian cochlea
1 reference
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Crossref
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https://api.crossref.org/works/10.1016%2FS0959-4388%2803%2900094-1
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7 January 2021
based on heuristic
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How well do we understand the cochlea?
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https://api.crossref.org/works/10.1016%2FS0959-4388%2803%2900094-1
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7 January 2021
based on heuristic
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Prestin is the motor protein of cochlear outer hair cells
1 reference
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Crossref
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https://api.crossref.org/works/10.1016%2FS0959-4388%2803%2900094-1
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based on heuristic
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Expression and localization of prestin and the sugar transporter GLUT-5 during development of electromotility in cochlear outer hair cells.
1 reference
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Crossref
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https://api.crossref.org/works/10.1016%2FS0959-4388%2803%2900094-1
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7 January 2021
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Intracellular anions as the voltage sensor of prestin, the outer hair cell motor protein
1 reference
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Crossref
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https://api.crossref.org/works/10.1016%2FS0959-4388%2803%2900094-1
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7 January 2021
based on heuristic
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Prestin is required for electromotility of the outer hair cell and for the cochlear amplifier
1 reference
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Crossref
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https://api.crossref.org/works/10.1016%2FS0959-4388%2803%2900094-1
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7 January 2021
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Furosemide alters organ of corti mechanics: evidence for feedback of outer hair cells upon the basilar membrane.
1 reference
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Crossref
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https://api.crossref.org/works/10.1016%2FS0959-4388%2803%2900094-1
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7 January 2021
based on heuristic
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An active cochlear model showing sharp tuning and high sensitivity.
1 reference
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https://api.crossref.org/works/10.1016%2FS0959-4388%2803%2900094-1
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7 January 2021
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Biophysics of the cochlea. II: Stationary nonlinear phenomenology.
1 reference
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https://api.crossref.org/works/10.1016%2FS0959-4388%2803%2900094-1
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7 January 2021
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The spatial and temporal representation of a tone on the guinea pig basilar membrane
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7 January 2021
based on heuristic
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A cochlear model using feed-forward outer-hair-cell forces
1 reference
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https://api.crossref.org/works/10.1016%2FS0959-4388%2803%2900094-1
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7 January 2021
based on heuristic
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Resonant tectorial membrane motion in the inner ear: its crucial role in frequency tuning
1 reference
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https://api.crossref.org/works/10.1016%2FS0959-4388%2803%2900094-1
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7 January 2021
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Identifiers
DOI
10.1016/S0959-4388(03)00094-1
1 reference
stated in
Europe PubMed Central
PubMed ID
12965292
retrieved
7 August 2017
PubMed ID
12965292
1 reference
stated in
Europe PubMed Central
PubMed ID
12965292
retrieved
7 August 2017
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