Active hair bundle movements in auditory hair cells.

PubWeight™: 1.58‹?› | Rank: Top 4%

🔗 View Article (PMC 1995638)

Published in J Physiol on August 03, 2006

Authors

Robert Fettiplace1

Author Affiliations

1: 185 Medical Sciences Building, 1300, University Avenue, Madison, WI 53706, USA. fettiplace@physiology.wisc.edu

Articles citing this

Mechanotransduction by hair cells: models, molecules, and mechanisms. Cell (2009) 2.46

Review series: The cell biology of hearing. J Cell Biol (2010) 2.29

Coherent motion of stereocilia assures the concerted gating of hair-cell transduction channels. Nat Neurosci (2006) 2.11

Cochlear amplification, outer hair cells and prestin. Curr Opin Neurobiol (2008) 1.69

Stereocilin-deficient mice reveal the origin of cochlear waveform distortions. Nature (2008) 1.39

The actions of calcium on hair bundle mechanics in mammalian cochlear hair cells. Biophys J (2008) 1.30

Prestin-based outer hair cell electromotility in knockin mice does not appear to adjust the operating point of a cilia-based amplifier. Proc Natl Acad Sci U S A (2007) 1.20

Power efficiency of outer hair cell somatic electromotility. PLoS Comput Biol (2009) 1.12

Voltage-sensitive prestin orthologue expressed in zebrafish hair cells. J Physiol (2007) 1.10

Parallel evolution of auditory genes for echolocation in bats and toothed whales. PLoS Genet (2012) 1.10

Medial olivocochlear efferent inhibition of basilar-membrane responses to clicks: evidence for two modes of cochlear mechanical excitation. J Acoust Soc Am (2008) 1.06

Prestin and the cholinergic receptor of hair cells: positively-selected proteins in mammals. Hear Res (2010) 1.00

Active cochlear amplification is dependent on supporting cell gap junctions. Nat Commun (2013) 1.00

Localization of the cochlear amplifier in living sensitive ears. PLoS One (2011) 0.98

Oncomodulin identifies different hair cell types in the mammalian inner ear. J Comp Neurol (2010) 0.96

Somatic motility and hair bundle mechanics, are both necessary for cochlear amplification? Hear Res (2010) 0.94

A mechanism for active hearing. Curr Opin Neurobiol (2007) 0.90

Loss of GABAB receptors in cochlear neurons: threshold elevation suggests modulation of outer hair cell function by type II afferent fibers. J Assoc Res Otolaryngol (2008) 0.85

Spontaneous voltage oscillations and response dynamics of a Hodgkin-Huxley type model of sensory hair cells. J Math Neurosci (2011) 0.82

Tuning in to cochlear hair cells. J Physiol (2006) 0.82

Amplifying effect of a release mechanism for fast adaptation in the hair bundle. J Acoust Soc Am (2009) 0.82

Psychophysical evidence of damaged active processing mechanisms in Belgian Waterslager Canaries. J Comp Physiol A Neuroethol Sens Neural Behav Physiol (2008) 0.82

Probing the Xenopus laevis inner ear transcriptome for biological function. BMC Genomics (2012) 0.81

Reverse transduction measured in the living cochlea by low-coherence heterodyne interferometry. Nat Commun (2016) 0.80

Two-Dimensional Cochlear Micromechanics Measured In Vivo Demonstrate Radial Tuning within the Mouse Organ of Corti. J Neurosci (2016) 0.80

Basilar membrane and tectorial membrane stiffness in the CBA/CaJ mouse. J Assoc Res Otolaryngol (2014) 0.80

Structure and mechanics of supporting cells in the guinea pig organ of Corti. PLoS One (2012) 0.80

Modelling cochlear mechanics. Biomed Res Int (2014) 0.80

Mechanosensory hair cells express two molecularly distinct mechanotransduction channels. Nat Neurosci (2016) 0.79

Silencing the cochlear amplifier by immobilizing prestin. Neuron (2008) 0.77

Hair cell force generation does not amplify or tune vibrations within the chicken basilar papilla. Nat Commun (2016) 0.77

Oncomodulin, an EF-Hand Ca2+ Buffer, Is Critical for Maintaining Cochlear Function in Mice. J Neurosci (2016) 0.77

Mechanical amplification exhibited by quiescent saccular hair bundles. Biophys J (2015) 0.76

Hair bundles teaming up to tune the mammalian cochlea. Proc Natl Acad Sci U S A (2008) 0.75

The cochlea--new insights into the conversion of sound into electrical signals. J Physiol (2006) 0.75

Recovery of otoacoustic emissions after high-level noise exposure in the American bullfrog. J Exp Biol (2014) 0.75

Articles cited by this

Mechanics of the mammalian cochlea. Physiol Rev (2001) 7.37

Compliance of the hair bundle associated with gating of mechanoelectrical transduction channels in the bullfrog's saccular hair cell. Neuron (1988) 5.04

A fast motile response in guinea-pig outer hair cells: the cellular basis of the cochlear amplifier. J Physiol (1987) 4.64

Cross-links between stereocilia in the guinea pig organ of Corti, and their possible relation to sensory transduction. Hear Res (1984) 4.54

The mechanical properties of ciliary bundles of turtle cochlear hair cells. J Physiol (1985) 4.34

Mechanical relaxation of the hair bundle mediates adaptation in mechanoelectrical transduction by the bullfrog's saccular hair cell. Proc Natl Acad Sci U S A (1987) 4.02

Force generation by mammalian hair bundles supports a role in cochlear amplification. Nature (2005) 3.58

Fast adaptation of mechanoelectrical transducer channels in mammalian cochlear hair cells. Nat Neurosci (2003) 3.45

Tip-link integrity and mechanical transduction in vertebrate hair cells. Neuron (1991) 3.39

A chemical-genetic strategy implicates myosin-1c in adaptation by hair cells. Cell (2002) 3.34

Mechano-electrical transduction currents in isolated vestibular hair cells of the chick. J Physiol (1985) 3.25

Reduced climbing and increased slipping adaptation in cochlear hair cells of mice with Myo7a mutations. Nat Neurosci (2002) 3.13

Ca2+ current-driven nonlinear amplification by the mammalian cochlea in vitro. Nat Neurosci (2005) 3.00

Tonotopic variation in the conductance of the hair cell mechanotransducer channel. Neuron (2003) 2.76

Spontaneous oscillation by hair bundles of the bullfrog's sacculus. J Neurosci (2003) 2.61

Mechano-electrical transducer currents in hair cells of the cultured neonatal mouse cochlea. Proc Biol Sci (1992) 2.47

A quantitative comparison of mechanoelectrical transduction in vestibular and auditory hair cells of neonatal mice. Proc Biol Sci (1997) 2.34

Negative hair-bundle stiffness betrays a mechanism for mechanical amplification by the hair cell. Proc Natl Acad Sci U S A (2000) 2.30

Rapid, active hair bundle movements in hair cells from the bullfrog's sacculus. J Neurosci (1996) 2.29

Hair-cell mechanotransduction and cochlear amplification. Neuron (2005) 2.24

Two components of transducer adaptation in auditory hair cells. J Neurophysiol (1999) 2.17

Fast adaptation in vestibular hair cells requires myosin-1c activity. Neuron (2005) 2.11

An active motor model for adaptation by vertebrate hair cells. J Neurosci (1992) 2.07

Adaptation in hair cells. Annu Rev Neurosci (2000) 1.95

Myosin-1c, the hair cell's adaptation motor. Annu Rev Physiol (2004) 1.95

A large-conductance calcium-selective mechanotransducer channel in mammalian cochlear hair cells. J Neurosci (2006) 1.94

Active hair bundle motion linked to fast transducer adaptation in auditory hair cells. J Neurosci (2000) 1.92

Forward and reverse transduction at the limit of sensitivity studied by correlating electrical and mechanical fluctuations in frog saccular hair cells. Hear Res (1992) 1.86

Stiffness of sensory-cell hair bundles in the isolated guinea pig cochlea. Hear Res (1984) 1.82

The transduction channel filter in auditory hair cells. J Neurosci (2005) 1.68

Displacement-clamp measurement of the forces exerted by gating springs in the hair bundle. Proc Natl Acad Sci U S A (1993) 1.67

Adaptation in auditory hair cells. Curr Opin Neurobiol (2003) 1.59

Nonlinear mechanical responses of mouse cochlear hair bundles. Proc Biol Sci (1992) 1.58

Depolarization of cochlear outer hair cells evokes active hair bundle motion by two mechanisms. J Neurosci (2006) 1.55

Mechanoelectrical transduction of adult outer hair cells studied in a gerbil hemicochlea. Nature (2004) 1.55

Mechanisms of active hair bundle motion in auditory hair cells. J Neurosci (2002) 1.52

Ca2+ changes the force sensitivity of the hair-cell transduction channel. Biophys J (2005) 1.48

The endogenous calcium buffer and the time course of transducer adaptation in auditory hair cells. J Neurosci (1998) 1.47

Imaging hair cell transduction at the speed of sound: dynamic behavior of mammalian stereocilia. Proc Natl Acad Sci U S A (2006) 1.35

Mechanical responses of the organ of corti to acoustic and electrical stimulation in vitro. Biophys J (2005) 1.32

Motility-associated hair-bundle motion in mammalian outer hair cells. Nat Neurosci (2005) 1.29

Cochlear electrically evoked emissions modulated by mechanical transduction channels. J Neurosci (1998) 1.17

Gating energies and forces of the mammalian hair cell transducer channel and related hair bundle mechanics. Proc Biol Sci (2000) 1.10

Patch clamped responses from outer hair cells in the intact adult organ of Corti. Pflugers Arch (1995) 1.09

Electrically evoked basilar membrane motion. J Acoust Soc Am (1995) 1.05

Structure of outer hair cell stereocilia side and attachment links in the chinchilla cochlea. J Histochem Cytochem (2002) 1.02

Organ of Corti kinematics. J Assoc Res Otolaryngol (2003) 1.00

A bifurcation analysis of neuronal subthreshold oscillations. Biophys J (1995) 0.97

Extracochlear electrically evoked otoacoustic emissions: a model for in vivo assessment of outer hair cell electromotility. Hear Res (1995) 0.96

Kinematic analysis of shear displacement as a means for operating mechanotransduction channels in the contact region between adjacent stereocilia of mammalian cochlear hair cells. Proc Biol Sci (1997) 0.93