Electrical tuning of hair cells in the inner ear

[1]  A. Hodgkin,et al.  A quantitative description of membrane current and its application to conduction and excitation in nerve , 1952, The Journal of physiology.

[2]  G. Békésy,et al.  Experiments in Hearing , 1963 .

[3]  M. Wiederhold Variations in the effects of electric stimulation of the crossed olivocochlear bundle on cat single auditory-nerve-fiber responses to tone bursts. , 1970, The Journal of the Acoustical Society of America.

[4]  F. Dodge,et al.  Subthreshold Behavior and Phenomenological Impedance of the Squid Giant Axon , 1970, The Journal of general physiology.

[5]  R. G. Turner,et al.  Tuning of single fibers in the cochlear nerve of the alligator lizard: Relation to receptor morphology , 1976, Brain Research.

[6]  A. J. Hudspeth,et al.  Ionic basis of the receptor potential in a vertebrate hair cell , 1979, Nature.

[7]  D. Lim,et al.  Cochlear anatomy related to cochlear micromechanics. A review. , 1980, The Journal of the Acoustical Society of America.

[8]  R. Fettiplace,et al.  The frequency selectivity of auditory nerve fibres and hair cells in the cochlea of the turtle , 1980, The Journal of physiology.

[9]  R. Fettiplace,et al.  An electrical tuning mechanism in turtle cochlear hair cells , 1981, The Journal of physiology.

[10]  A. Gorman,et al.  Ionic requirements for membrane oscillations and their dependence on the calcium concentration in a molluscan pace‐maker neurone , 1982, The Journal of physiology.

[11]  A. J. Hudspeth,et al.  Voltage- and ion-dependent conductances in solitary vertebrate hair cells , 1983, Nature.

[12]  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.

[13]  A J Hudspeth,et al.  A micromechanical contribution to cochlear tuning and tonotopic organization. , 1983, Science.

[14]  J. Ashmore,et al.  Frequency tuning in a frog vestibular organ , 1983, Nature.

[15]  R. Fettiplace,et al.  Efferent desensitization of auditory nerve fibre responses in the cochlea of the turtle Pseudemys scripta elegans. , 1984, The Journal of physiology.

[16]  R. Fettiplace,et al.  Synaptic hyperpolarization and inhibition of turtle cochlear hair cells. , 1984, The Journal of physiology.

[17]  H. Ohmori Studies of ionic currents in the isolated vestibular hair cell of the chick. , 1984, The Journal of physiology.

[18]  A. Nuttall,et al.  Efferent control of cochlear inner hair cell responses in the guinea‐pig. , 1984, The Journal of physiology.

[19]  R. Fettiplace,et al.  Efferent modulation of hair cell tuning in the cochlea of the turtle. , 1985, The Journal of physiology.

[20]  H. Ohmori,et al.  Mechano‐electrical transduction currents in isolated vestibular hair cells of the chick. , 1985, The Journal of physiology.

[21]  R. Fettiplace,et al.  Electrical resonance and membrane currents in turtle cochlear hair cells , 1986, Hearing Research.

[22]  J. Ashmore,et al.  An electrical resonance in hair cells of the amphibian papilla of the frog Rana temporaria , 1987, Hearing Research.

[23]  R. Fettiplace,et al.  Variation of membrane properties in hair cells isolated from the turtle cochlea. , 1987, The Journal of physiology.