Adaptation Reduces Spike-count Reliability, but Not Spike-timing Precision, of Auditory Nerve Responses.
From: Department of Clinical Studies, New Bolton Center, School of Veterinary Medicine, University of Pennsylvania, Philadelphia, Pennsylvania 19104, USA.
The Journal of neuroscience : the official journal of the Society for Neuroscience
- Publish Date: Jun 2007
- ISSN: 1529-2401
- Volume: 27
- Issue: 24
- Pages: 6461-72
- Medium: Internet
- Language: English
- Citation (JAMA): Avissar Michael, Furman Adam C, Saunders James C, et al. Adaptation Reduces Spike-count Reliability, but Not Spike-timing Precision, of Auditory Nerve Responses.. J. Neurosci. Jun 2007;27:6461-72
Abstract
Sensory systems use adaptive coding mechanisms to filter redundant information from the environment to efficiently represent the external world. One such mechanism found in most sensory neurons is rate adaptation, defined as a reduction in firing rate in response to a constant stimulus. In auditory nerve, this form of adaptation is likely mediated by exhaustion of release-ready synaptic vesicles in the cochlear hair cell. To better understand how specific synaptic mechanisms limit neural coding strategies, we examined the trial-to-trial variability of auditory nerve responses during short-term rate-adaptation by measuring spike-timing precision and spike-count reliability. After adaptation, precision remained unchanged, whereas for all but the lowest-frequency fibers, reliability decreased. Modeling statistical properties of the hair cell-afferent fiber synapse suggested that the ability of one or a few vesicles to elicit an action potential reduces the inherent response variability expected from quantal neurotransmitter release, and thereby confers the observed count reliability at sound onset. However, with adaptation, depletion of the readily releasable pool of vesicles diminishes quantal content and antagonizes the postsynaptic enhancement of reliability. These findings imply that during the course of short-term adaptation, coding strategies that employ a rate code are constrained by increased neural noise because of vesicle depletion, whereas those that employ a temporal code are not.
Mesh Headings (Keywords): Acoustic Stimulation, Action Potentials, Adaptation, Physiological, Analysis of Variance, Animals, Animals, Newborn, Auditory Pathways, Auditory Threshold, Chick Embryo, Chickens, Cochlear Nerve, Dose-Response Relationship, Radiation, Monte Carlo Method, Neurons, Afferent, Poisson Distribution, Reaction Time, Time Factors
Check for Full Text / PubMed Unique Identifier (PMID): 17567807
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