Simulation of mechanical to neural transduction in the auditory receptor
- 1 March 1986
- journal article
- research article
- Published by Acoustical Society of America (ASA) in The Journal of the Acoustical Society of America
- Vol. 79 (3) , 702-711
- https://doi.org/10.1121/1.393460
Abstract
A probabilistic model is described for transmitter release from hair cells, auditory neuron EPSP’s, and discharge patterns. The model assumes that the release fraction of the transmitter is a function of stimulus intensity. It further assumes that some of this transmitter substance is taken back into the cell while some is irretrievably lost from the cleft. These assumptions differ from other recent models which propose multiple release sites, fixed release fractions, and no transmitter reuptake. The model produces realistic mammalian rate intensity functions, interval and period histograms, incremental responses, and adaptation effects. It mimics successfully the adaptation of successive EPSP amplitudes of the afferent neuron of the goldfish sacculus and offers a reinterpretation of the implications of these studies for hair cell synaptic mechanism.This publication has 10 references indexed in Scilit:
- Very rapid adaptation in the guinea pig auditory nerveHearing Research, 1985
- Rapid and short-term adaptation in auditory nerve responsesHearing Research, 1984
- Multiple reservoir model of neurotransmitter release by a cochlear inner hair cellThe Journal of the Acoustical Society of America, 1982
- Adaptation in auditory-nerve fibers: A revised modelBiological Cybernetics, 1982
- A model of the hair cell-primary fiber complexThe Journal of the Acoustical Society of America, 1982
- Quantal analysis of a decremental response at hair cell‐afferent fibre synapses in the goldfish sacculus.The Journal of Physiology, 1982
- Non‐linearities in the responses of turtle hair cellsThe Journal of Physiology, 1981
- Further studies on the Schroeder–Hall hair‐cell modelThe Journal of the Acoustical Society of America, 1979
- Intracellular studies of hair cells in the mammalian cochlea.The Journal of Physiology, 1978
- Phase-locked response to low-frequency tones in single auditory nerve fibers of the squirrel monkey.Journal of Neurophysiology, 1967