Mechano-electrical Transduction: New Insights into Old Ideas
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J. Gale | B. Kachar | S. V. Netten | A. J. Ricci | B. Kachar | J. Gale | S. M. Van Netten | A. Ricci | S. M. Netten
[1] T. Hasson,et al. Myosin VI Regulates Endocytosis of the Cystic Fibrosis Transmembrane Conductance Regulator* , 2004, Journal of Biological Chemistry.
[2] A J Hudspeth,et al. Negative hair-bundle stiffness betrays a mechanism for mechanical amplification by the hair cell. , 2000, Proceedings of the National Academy of Sciences of the United States of America.
[3] Mark E. Schneider,et al. When size matters: the dynamic regulation of stereocilia lengths. , 2005, Current opinion in cell biology.
[4] K. Beisel,et al. Expression of subunits for the cAMP-sensitive 'olfactory' cyclic nucleotide-gated ion channel in the cochlea: implications for signal transduction. , 2002, Brain research. Molecular brain research.
[5] A. Hudspeth. Mechanoelectrical transduction by hair cells of the bullfrog's sacculus. , 1989, Progress in brain research.
[6] A. Hudspeth,et al. Vanilloid Receptor–Related Osmotically Activated Channel (VR-OAC), a Candidate Vertebrate Osmoreceptor , 2000, Cell.
[7] I. Russell,et al. Sensory transduction and frequency selectivity in the basal turn of the guinea-pig cochlea. , 1992, Philosophical transactions of the Royal Society of London. Series B, Biological sciences.
[8] S. Frings,et al. Properties of cyclic nucleotide-gated channels mediating olfactory transduction. Activation, selectivity, and blockage , 1992, The Journal of general physiology.
[9] Shuping Jia,et al. Motility-associated hair-bundle motion in mammalian outer hair cells , 2005, Nature Neuroscience.
[10] D P Corey,et al. Kinetics of the receptor current in bullfrog saccular hair cells , 1983, The Journal of neuroscience : the official journal of the Society for Neuroscience.
[11] P. Gillespie,et al. Regeneration of broken tip links and restoration of mechanical transduction in hair cells. , 1996, Proceedings of the National Academy of Sciences of the United States of America.
[12] A J Hudspeth,et al. The selectivity of the hair cell's mechanoelectrical-transduction channel promotes Ca2+ flux at low Ca2+ concentrations. , 1997, Proceedings of the National Academy of Sciences of the United States of America.
[13] G. Richardson,et al. Block by amiloride and its derivatives of mechano‐electrical transduction in outer hair cells of mouse cochlear cultures. , 1994, The Journal of physiology.
[14] S M Khanna,et al. Stiffness changes of the cupula associated with the mechanics of hair cells in the fish lateral line. , 1994, Proceedings of the National Academy of Sciences of the United States of America.
[15] A. Patel,et al. Lipid and mechano-gated 2P domain K(+) channels. , 2001, Current opinion in cell biology.
[16] H. Fuchs,et al. A Myo7a mutation cosegregates with stereocilia defects and low-frequency hearing impairment , 2004, Mammalian Genome.
[17] V. Torre,et al. Single-channel properties of ionic channels gated by cyclic nucleotides. , 1997, Biophysical journal.
[18] F. Bezanilla,et al. Voltage-dependent gating of ionic channels. , 1994, Annual review of biophysics and biomolecular structure.
[19] A J Hudspeth,et al. Mechanical relaxation of the hair bundle mediates adaptation in mechanoelectrical transduction by the bullfrog's saccular hair cell. , 1987, Proceedings of the National Academy of Sciences of the United States of America.
[20] K. Steel,et al. Myosin VIIA Is Required for Aminoglycoside Accumulation in Cochlear Hair Cells , 1997, The Journal of Neuroscience.
[21] A. Hudspeth,et al. Blockage of the transduction channels of hair cells in the bullfrog's sacculus by aminoglycoside antibiotics , 1989, Hearing Research.
[22] A J Ricci,et al. Two components of transducer adaptation in auditory hair cells. , 1999, Journal of neurophysiology.
[23] G. Geleoc,et al. A quantitative comparison of mechanoelectrical transduction in vestibular and auditory hair cells of neonatal mice , 1997, Proceedings of the Royal Society of London. Series B: Biological Sciences.
[24] A. J. Hudspeth,et al. Ionic basis of the receptor potential in a vertebrate hair cell , 1979, Nature.
[25] Robert Fettiplace,et al. Tonotopic Variation in the Conductance of the Hair Cell Mechanotransducer Channel , 2003, Neuron.
[26] R. Merkel,et al. Energy landscapes of receptor–ligand bonds explored with dynamic force spectroscopy , 1999, Nature.
[27] H. Ohmori. Mechanoelectrical transducer has discrete conductances in the chick vestibular hair cell. , 1984, Proceedings of the National Academy of Sciences of the United States of America.
[28] Heidi L. Rehm,et al. TRPA1 is a candidate for the mechanosensitive transduction channel of vertebrate hair cells , 2004, Nature.
[29] D. Benos,et al. Putative immunolocalization of the mechanoelectrical transduction channels in mammalian cochlear hair cells , 1992, Proceedings of the Royal Society of London. Series B: Biological Sciences.
[30] Computational models of hair cell bundle mechanics: III. 3-D utricular bundles , 2004, Hearing Research.
[31] E. Hummler,et al. Mechano-electrical transduction in mice lacking the alpha-subunit of the epithelial sodium channel. , 1999, Hearing research.
[32] C Kung,et al. Mechanosensitive channels of Escherichia coli: the MscL gene, protein, and activities. , 1997, Annual review of physiology.
[33] E. M. De La Cruz,et al. Vertebrate Myosin VIIb Is a High Duty Ratio Motor Adapted for Generating and Maintaining Tension* , 2005, Journal of Biological Chemistry.
[34] D. DeRosier,et al. Actin Filaments , Stereocilia , and Hair Cells of the Bird Cochlea . V . How the Staircase Pattern of Stere iliary Lengths Is Generated , 2002 .
[35] A J Ricci,et al. Probing the pore of the auditory hair cell mechanotransducer channel in turtle , 2004, The Journal of physiology.
[36] A J Hudspeth,et al. Detection of Ca2+ entry through mechanosensitive channels localizes the site of mechanoelectrical transduction in hair cells. , 1995, Proceedings of the National Academy of Sciences of the United States of America.
[37] J. Ashmore,et al. Stiffness of sensory hair bundles in the sacculus of the frog , 1986, Hearing Research.
[38] H. Drummond,et al. Degenerin/Epithelial Na+ Channel Proteins: Components of a Vascular Mechanosensor , 2004, Hypertension.
[39] M G Evans,et al. The actions of calcium on the mechano‐electrical transducer current of turtle hair cells. , 1991, The Journal of physiology.
[40] John A. Assad,et al. Tip-link integrity and mechanical transduction in vertebrate hair cells , 1991, Neuron.
[41] A J Hudspeth,et al. Gating-spring models of mechanoelectrical transduction by hair cells of the internal ear. , 1995, Annual review of biophysics and biomolecular structure.
[42] A. Woodhull,et al. Ionic Blockage of Sodium Channels in Nerve , 1973, The Journal of general physiology.
[43] David P. Corey,et al. Mechanoelectrical transduction by hair cells , 1992, Trends in Neurosciences.
[44] R. Fettiplace,et al. The mechanical properties of ciliary bundles of turtle cochlear hair cells. , 1985, The Journal of physiology.
[45] J. Saunders,et al. Actin filaments, stereocilia, and hair cells of the bird cochlea. I. Length, number, width, and distribution of stereocilia of each hair cell are related to the position of the hair cell on the cochlea , 1983, The Journal of cell biology.
[46] D. Corey,et al. Ca2+ CHANGES THE FORCE SENSITIVITY OF THE HAIR-CELL TRANSDUCTION CHANNEL , 2006 .
[47] D. Benos,et al. The binding site on cochlear stereocilia for antisera raised against renal Na+ channels is blocked by amiloride and dihydrostreptomycin , 1996, Hearing Research.
[48] B. Kachar,et al. High-resolution structure of hair-cell tip links. , 2000, Proceedings of the National Academy of Sciences of the United States of America.
[49] H. Ohmori,et al. Amiloride blocks the mechano‐electrical transduction channel of hair cells of the chick. , 1988, The Journal of physiology.
[50] A. Ricci. Differences in mechano-transducer channel kinetics underlie tonotopic distribution of fast adaptation in auditory hair cells. , 2002, Journal of neurophysiology.
[51] A. Flock,et al. Stiffness of sensory-cell hair bundles in the isolated guinea pig cochlea , 1984, Hearing Research.
[52] O. Hamill,et al. Ionic effects on amiloride block of the mechanosensitive channel in Xenopus oocytes , 1993, British journal of pharmacology.
[53] D. DeRosier,et al. The distribution of hair cell bundle lengths and orientations suggests an unexpected pattern of hair cell stimulation in the chick cochlea , 1987, Hearing Research.
[54] F Sachs,et al. Stochastic models for mechanical transduction. , 1991, Biophysical journal.
[55] Rainer W Friedrich,et al. NompC TRP Channel Required for Vertebrate Sensory Hair Cell Mechanotransduction , 2003, Science.
[56] H P Zenner,et al. Evidence for Opening of Hair-Cell Transducer Channels after Tip-Link Loss , 1998, The Journal of Neuroscience.
[57] C. Mahaffey,et al. The mouse stargazer gene encodes a neuronal Ca2+-channel γ subunit , 1998, Nature Genetics.
[58] R. A. Baird,et al. Myosin Iβ Is Located at Tip Link Anchors in Vestibular Hair Bundles , 1998, The Journal of Neuroscience.
[59] A J Ricci,et al. The Endogenous Calcium Buffer and the Time Course of Transducer Adaptation in Auditory Hair Cells , 1998, The Journal of Neuroscience.
[60] A. Patapoutian,et al. Noxious Cold Ion Channel TRPA1 Is Activated by Pungent Compounds and Bradykinin , 2004, Neuron.
[61] Marian P. Regan. A method for calculating the spectral response of a hair cell to a pure tone , 2004, Biological Cybernetics.
[62] A J Hudspeth,et al. The transduction channel of hair cells from the bull‐frog characterized by noise analysis. , 1986, The Journal of physiology.
[63] J. O. Pickles,et al. Cross-links between stereocilia in the guinea pig organ of Corti, and their possible relation to sensory transduction , 1984, Hearing Research.
[64] K. D. Karavitaki,et al. HAIR BUNDLE MECHANICS AT HIGH FREQUENCIES: A TEST OF SERIES OR PARALLEL TRANSDUCTION , 2006 .
[65] D. Corey,et al. Localization of Myosin-Iβ near Both Ends of Tip Links in Frog Saccular Hair Cells , 1998, The Journal of Neuroscience.
[66] Robert Fettiplace,et al. The Transduction Channel Filter in Auditory Hair Cells , 2005, The Journal of Neuroscience.
[67] A J Ricci,et al. Mechanisms of Active Hair Bundle Motion in Auditory Hair Cells , 2002, The Journal of Neuroscience.
[68] D. DeRosier,et al. Actin filaments, stereocilia, and hair cells of the bird cochlea. IV. How the actin filaments become organized in developing stereocilia and in the cuticular plate. , 1986, Developmental biology.
[69] M G Evans,et al. Activation and adaptation of transducer currents in turtle hair cells. , 1989, The Journal of physiology.
[70] Peter G. Gillespie,et al. Cadherin 23 is a component of the tip link in hair-cell stereocilia , 2004, Nature.
[71] A. Hudspeth. Hair-bundle mechanics and a model for mechanoelectrical transduction by hair cells. , 1992, Society of General Physiologists series.
[72] C. Kung,et al. A possible unifying principle for mechanosensation , 2005, Nature.
[73] M. Lazdunski,et al. A phospholipid sensor controls mechanogating of the K+ channel TREK‐1 , 2005, The EMBO journal.
[74] R. Fettiplace,et al. Calcium permeation of the turtle hair cell mechanotransducer channel and its relation to the composition of endolymph , 1998, The Journal of physiology.
[75] Kurt Wiesenfeld,et al. Mechanoelectrical transduction assisted by Brownian motion: a role for noise in the auditory system , 1998, Nature Neuroscience.
[76] L. Schild,et al. Epithelial sodium channel/degenerin family of ion channels: a variety of functions for a shared structure. , 2002, Physiological reviews.
[77] K. Nagata,et al. Nociceptor and Hair Cell Transducer Properties of TRPA1, a Channel for Pain and Hearing , 2005, The Journal of Neuroscience.
[78] Jonathon Howard,et al. Hypothesis: A helix of ankyrin repeats of the NOMPC-TRP ion channel is the gating spring of mechanoreceptors , 2004, Current Biology.
[79] A J Hudspeth,et al. Displacement-clamp measurement of the forces exerted by gating springs in the hair bundle. , 1993, Proceedings of the National Academy of Sciences of the United States of America.
[80] B. Martinac,et al. Mechanosensitive channels in archaea , 2007, Cell Biochemistry and Biophysics.
[81] Kavita Shah,et al. A Chemical-Genetic Strategy Implicates Myosin-1c in Adaptation by Hair Cells , 2002, Cell.
[82] J. Lynch,et al. The permeation of organic cations through cAMP-gated channels in mammalian olfactory receptor neurons , 1995, The Journal of Membrane Biology.
[83] K. Schulten,et al. In search of the hair-cell gating spring elastic properties of ankyrin and cadherin repeats. , 2005, Structure.
[84] A J Hudspeth,et al. Extracellular current flow and the site of transduction by vertebrate hair cells , 1982, The Journal of neuroscience : the official journal of the Society for Neuroscience.
[85] A. J. Hudspeth,et al. Localization of the hair cell's transduction channels at the hair bundle's top by iontophoretic application of a channel blocker , 1991, Neuron.
[86] G. Richardson,et al. Hair Cells Require Phosphatidylinositol 4,5-Bisphosphate for Mechanical Transduction and Adaptation , 2004, Neuron.
[87] Winfried Denk,et al. Calcium imaging of single stereocilia in hair cells: Localization of transduction channels at both ends of tip links , 1995, Neuron.
[88] A J Hudspeth,et al. Rapid, Active Hair Bundle Movements in Hair Cells from the Bullfrog’s Sacculus , 1996, The Journal of Neuroscience.
[89] D. Corey,et al. TRP channels in mechanosensation , 2005, Current Opinion in Neurobiology.
[90] Z. Ahmed,et al. Spatiotemporal pattern and isoforms of cadherin 23 in wild type and waltzer mice during inner ear hair cell development. , 2005, Developmental biology.
[91] C. Petit,et al. Characterisation of DRASIC in the mouse inner ear , 2004, Hearing Research.
[92] A J Ricci,et al. The effects of calcium buffering and cyclic AMP on mechano‐electrical transduction in turtle auditory hair cells , 1997, The Journal of physiology.
[93] A. J. Hudspeth,et al. Compliance of the hair bundle associated with gating of mechanoelectrical transduction channels in the Bullfrog's saccular hair cell , 1988, Neuron.
[94] P. Gillespie,et al. Xenopus TRPN1 (NOMPC) localizes to microtubule-based cilia in epithelial cells, including inner-ear hair cells. , 2005, Proceedings of the National Academy of Sciences of the United States of America.
[95] D. Corey,et al. Myosin and Adaptation by Hair Cells , 1997, Neuron.
[96] C. Geisler. A model of stereociliary tip-link stretches , 1993, Hearing Research.
[97] C. Zuker,et al. A Drosophila mechanosensory transduction channel. , 2000, Science.
[98] A J Hudspeth,et al. Active hair-bundle movements can amplify a hair cell's response to oscillatory mechanical stimuli. , 1999, Proceedings of the National Academy of Sciences of the United States of America.
[99] A J Hudspeth,et al. DIRECTIONAL SENSITIVITY OF INDIVIDUAL VERTEBRATE HAIR CELLS TO CONTROLLED DEFLECTION OF THEIR HAIR BUNDLES * , 1981, Annals of the New York Academy of Sciences.
[100] J. Ruppersberg,et al. Mechanically and ATP-induced currents of mouse outer hair cells are independent and differentially blocked by d-tubocurarine , 1997, Neuropharmacology.
[101] C. Mahaffey,et al. The mouse stargazer gene encodes a neuronal Ca2+-channel gamma subunit. , 1998, Nature genetics.
[102] J. Cotton,et al. Computational models of hair cell bundle mechanics: II. Simplified bundle models , 2004, Hearing Research.
[103] C. Kros,et al. The aminoglycoside antibiotic dihydrostreptomycin rapidly enters mouse outer hair cells through the mechano ‐electrical transducer channels , 2005, The Journal of physiology.
[104] R. Fettiplace,et al. Force generation by mammalian hair bundles supports a role in cochlear amplification , 2005, Nature.
[105] Pierre Legrain,et al. Myosin VIIa, harmonin and cadherin 23, three Usher I gene products that cooperate to shape the sensory hair cell bundle , 2002, The EMBO journal.
[106] Christine Petit,et al. Cadherin 23 is a component of the transient lateral links in the developing hair bundles of cochlear sensory cells. , 2005, Developmental biology.
[107] Kazuhiko Kinosita,et al. Unbinding force of a single motor molecule of muscle measured using optical tweezers , 1995, Nature.
[108] J. O. Pickles. A model for the mechanics of the stereociliar bundle on acousticolateral hair cells , 1993, Hearing Research.
[109] Sietse M. van Netten,et al. Gating energies and forces of the mammalian hair cell transducer channel and related hair bundle mechanics , 2000, Proceedings of the Royal Society of London. Series B: Biological Sciences.
[110] C. Hackney,et al. Cross-links between stereocilia in the guinea pig cochlea , 1985, Hearing Research.
[111] Bechara Kachar,et al. Have we found the tip link, transduction channel, and gating spring of the hair cell? , 2005, Current Opinion in Neurobiology.
[112] Sietse M van Netten,et al. Channel gating forces govern accuracy of mechano-electrical transduction in hair cells , 2003, Proceedings of the National Academy of Sciences of the United States of America.
[113] M. E. Bashtanov,et al. The mechanical properties of chick (Gallus domesticus) sensory hair bundles: relative contributions of structures sensitive to calcium chelation and subtilisin treatment , 2004, The Journal of physiology.
[114] J. Santos-Sacchi,et al. Expression in cochlea and retina of myosin VIIa, the gene product defective in Usher syndrome type 1B. , 1995, Proceedings of the National Academy of Sciences of the United States of America.
[115] The extent of adaptation in bullfrog saccular hair cells , 1994, The Journal of neuroscience : the official journal of the Society for Neuroscience.
[116] Mark E. Schneider,et al. An actin molecular treadmill and myosins maintain stereocilia functional architecture and self-renewal , 2004, The Journal of cell biology.
[117] H. Ohmori,et al. Mechano‐electrical transduction currents in isolated vestibular hair cells of the chick. , 1985, The Journal of physiology.
[118] R. Fettiplace,et al. Clues to the cochlear amplifier from the turtle ear , 2001, Trends in Neurosciences.
[119] R. Horn,et al. Interactions between a Pore-Blocking Peptide and the Voltage Sensor of the Sodium Channel: An Electrostatic Approach to Channel Geometry , 1996, Neuron.
[120] G. Richardson,et al. Mechano-electrical transducer currents in hair cells of the cultured neonatal mouse cochlea , 1992, Proceedings of the Royal Society of London. Series B: Biological Sciences.
[121] Ping Zhang,et al. Structure and regulation of amiloride-sensitive sodium channels. , 2000, Annual review of physiology.
[122] J. Assad,et al. An active motor model for adaptation by vertebrate hair cells , 1992, The Journal of neuroscience : the official journal of the Society for Neuroscience.
[123] A J Ricci,et al. Active Hair Bundle Motion Linked to Fast Transducer Adaptation in Auditory Hair Cells , 2000, The Journal of Neuroscience.
[124] E. Hummler,et al. Mechano-electrical transduction in mice lacking the α-subunit of the epithelial sodium channel , 1999, Hearing Research.
[125] W. Denk,et al. Mechanical response of frog saccular hair bundles to the aminoglycoside block of mechanoelectrical transduction. , 1992, Journal of neurophysiology.
[126] M. Chalfie,et al. MEC-2 regulates C. elegans DEG/ENaC channels needed for mechanosensation , 2002, Nature.
[127] K. Steel,et al. Reduced climbing and increased slipping adaptation in cochlear hair cells of mice with Myo7a mutations , 2002, Nature Neuroscience.
[128] D P Corey,et al. Analysis of the microphonic potential of the bullfrog's sacculus , 1983, The Journal of neuroscience : the official journal of the Society for Neuroscience.
[129] M. G. Evans,et al. Fast adaptation of mechanoelectrical transducer channels in mammalian cochlear hair cells , 2003, Nature Neuroscience.
[130] Peter McIntyre,et al. ANKTM1, a TRP-like Channel Expressed in Nociceptive Neurons, Is Activated by Cold Temperatures , 2003, Cell.
[131] D P Corey,et al. Voltage dependence of adaptation and active bundle movement in bullfrog saccular hair cells. , 1989, Proceedings of the National Academy of Sciences of the United States of America.
[132] T. Hasson,et al. Regulation of Myosin‐VI Targeting to Endocytic Compartments , 2004, Traffic.
[133] H. Kennedy,et al. FM1-43 Dye Behaves as a Permeant Blocker of the Hair-Cell Mechanotransducer Channel , 2001, The Journal of Neuroscience.
[134] Anthony W. Gummer,et al. Tonic mechanosensitivity of outer hair cells after loss of tip links , 2005, Hearing Research.
[135] Stephan C. Schuster,et al. Mutations in cadherin 23 affect tip links in zebrafish sensory hair cells , 2004, Nature.