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Theoretical foundations of the sound analog membrane potential that underlies coincidence detection in the barn owl

A wide variety of neurons encode temporal information via phase-locked spikes. In the avian auditory brainstem, neurons in the cochlear nucleus magnocellularis (NM) send phase-locked synaptic inputs to coincidence detector neurons in the nucleus laminaris (NL) that mediate sound localization. Previo...

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Autores principales: Ashida, Go, Funabiki, Kazuo, Carr, Catherine E.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Frontiers Media S.A. 2013
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3821005/
https://www.ncbi.nlm.nih.gov/pubmed/24265616
http://dx.doi.org/10.3389/fncom.2013.00151
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author Ashida, Go
Funabiki, Kazuo
Carr, Catherine E.
author_facet Ashida, Go
Funabiki, Kazuo
Carr, Catherine E.
author_sort Ashida, Go
collection PubMed
description A wide variety of neurons encode temporal information via phase-locked spikes. In the avian auditory brainstem, neurons in the cochlear nucleus magnocellularis (NM) send phase-locked synaptic inputs to coincidence detector neurons in the nucleus laminaris (NL) that mediate sound localization. Previous modeling studies suggested that converging phase-locked synaptic inputs may give rise to a periodic oscillation in the membrane potential of their target neuron. Recent physiological recordings in vivo revealed that owl NL neurons changed their spike rates almost linearly with the amplitude of this oscillatory potential. The oscillatory potential was termed the sound analog potential, because of its resemblance to the waveform of the stimulus tone. The amplitude of the sound analog potential recorded in NL varied systematically with the interaural time difference (ITD), which is one of the most important cues for sound localization. In order to investigate the mechanisms underlying ITD computation in the NM-NL circuit, we provide detailed theoretical descriptions of how phase-locked inputs form oscillating membrane potentials. We derive analytical expressions that relate presynaptic, synaptic, and postsynaptic factors to the signal and noise components of the oscillation in both the synaptic conductance and the membrane potential. Numerical simulations demonstrate the validity of the theoretical formulations for the entire frequency ranges tested (1–8 kHz) and potential effects of higher harmonics on NL neurons with low best frequencies (<2 kHz).
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spelling pubmed-38210052013-11-21 Theoretical foundations of the sound analog membrane potential that underlies coincidence detection in the barn owl Ashida, Go Funabiki, Kazuo Carr, Catherine E. Front Comput Neurosci Neuroscience A wide variety of neurons encode temporal information via phase-locked spikes. In the avian auditory brainstem, neurons in the cochlear nucleus magnocellularis (NM) send phase-locked synaptic inputs to coincidence detector neurons in the nucleus laminaris (NL) that mediate sound localization. Previous modeling studies suggested that converging phase-locked synaptic inputs may give rise to a periodic oscillation in the membrane potential of their target neuron. Recent physiological recordings in vivo revealed that owl NL neurons changed their spike rates almost linearly with the amplitude of this oscillatory potential. The oscillatory potential was termed the sound analog potential, because of its resemblance to the waveform of the stimulus tone. The amplitude of the sound analog potential recorded in NL varied systematically with the interaural time difference (ITD), which is one of the most important cues for sound localization. In order to investigate the mechanisms underlying ITD computation in the NM-NL circuit, we provide detailed theoretical descriptions of how phase-locked inputs form oscillating membrane potentials. We derive analytical expressions that relate presynaptic, synaptic, and postsynaptic factors to the signal and noise components of the oscillation in both the synaptic conductance and the membrane potential. Numerical simulations demonstrate the validity of the theoretical formulations for the entire frequency ranges tested (1–8 kHz) and potential effects of higher harmonics on NL neurons with low best frequencies (<2 kHz). Frontiers Media S.A. 2013-11-08 /pmc/articles/PMC3821005/ /pubmed/24265616 http://dx.doi.org/10.3389/fncom.2013.00151 Text en Copyright © 2013 Ashida, Funabiki and Carr. http://creativecommons.org/licenses/by/3.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution License (CC BY). The use, distribution or reproduction in other forums is permitted, provided the original author(s) or licensor are credited and that the original publication in this journal is cited, in accordance with accepted academic practice. No use, distribution or reproduction is permitted which does not comply with these terms.
spellingShingle Neuroscience
Ashida, Go
Funabiki, Kazuo
Carr, Catherine E.
Theoretical foundations of the sound analog membrane potential that underlies coincidence detection in the barn owl
title Theoretical foundations of the sound analog membrane potential that underlies coincidence detection in the barn owl
title_full Theoretical foundations of the sound analog membrane potential that underlies coincidence detection in the barn owl
title_fullStr Theoretical foundations of the sound analog membrane potential that underlies coincidence detection in the barn owl
title_full_unstemmed Theoretical foundations of the sound analog membrane potential that underlies coincidence detection in the barn owl
title_short Theoretical foundations of the sound analog membrane potential that underlies coincidence detection in the barn owl
title_sort theoretical foundations of the sound analog membrane potential that underlies coincidence detection in the barn owl
topic Neuroscience
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3821005/
https://www.ncbi.nlm.nih.gov/pubmed/24265616
http://dx.doi.org/10.3389/fncom.2013.00151
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