Literature DB >> 8662265

The delayed rectifier, IKI, is the major conductance in type I vestibular hair cells across vestibular end organs.

A J Ricci1, K J Rennie, M J Correia.   

Abstract

Hair cells were dissociated from the semicircular canal, utricle, lagena and saccule of white king pigeons. Type I hair cells were identified morphologically based on the ratios of neck width to cuticular plate width (NPR < 0.72) as well as neck width to cell body width (NBR < 0.64). The perforated patch variant of the whole-cell recording technique was used to measure electrical properties from type I hair cells. In voltage-clamp, the membrane properties of all identified type I cells were dominated by a predominantly outward potassium current, previously characterized in semicircular canal as IKI. Zero-current potential, activation, deactivation, slope conductance, pharmacologic and steady-state properties of the complex currents were not statistically different between type I hair cells of different vestibular end organs. The voltage dependence causes a significant proportion of this conductance to be active about the cell's zero-current potential. The first report of the whole-cell activation kinetics of the conductance is presented, showing a voltage dependence that could be best fit by an equation for a single exponential. Results presented here are the first data from pigeon dissociated type I hair cells from utricle, saccule and lagena suggesting that the basolateral conductances of a morphologically identified population of type I hair cells are conserved between functionally different vestibular end organs; the major conductance being a delayed rectifier characterized previously in semicircular canal hair cells as IKI.

Entities:  

Keywords:  NASA Discipline Neuroscience; NASA Discipline Number 40-99; NASA Program Space Biology Research Associates; Non-NASA Center

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Year:  1996        PMID: 8662265     DOI: 10.1007/s004240050102

Source DB:  PubMed          Journal:  Pflugers Arch        ISSN: 0031-6768            Impact factor:   3.657


  25 in total

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Authors:  M J Correia; B N Christensen; L E Moore; D G Lang
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2.  M-like K+ currents in type I hair cells and calyx afferent endings of the developing rat utricle.

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6.  Efferent synaptic transmission at the vestibular type II hair cell synapse.

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7.  Development of spontaneous activity and response properties of primary lagenar neurons in the chick.

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Authors:  Gwenaëlle S G Géléoc; Jessica R Risner; Jeffrey R Holt
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9.  Development of K(+) and Na(+) conductances in rodent postnatal semicircular canal type I hair cells.

Authors:  Gang Q Li; Frances L Meredith; Katherine J Rennie
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10.  Large basolateral processes on type II hair cells are novel processing units in mammalian vestibular organs.

Authors:  Rémy Pujol; Sarah B Pickett; Tot Bui Nguyen; Jennifer S Stone
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