Voltage gated ion channels shape subthreshold synaptic integration in principal neurons of the medial superior olive

Principal neurons of the medial superior olive (MSO) encode low-frequency sound localization cues by comparing the relative arrival time of sound to the two ears. In mammals, MSO neurons display biophysical specializations, such as voltage-gated sodium (Na[subscript v]) and potassium (K[subscript v]...

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Main Author: Mathews, Paul James, 1978-
Format: Others
Language:English
Published: 2012
Subjects:
Online Access:http://hdl.handle.net/2152/18247
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spelling ndltd-UTEXAS-oai-repositories.lib.utexas.edu-2152-182472015-09-20T17:10:43ZVoltage gated ion channels shape subthreshold synaptic integration in principal neurons of the medial superior oliveMathews, Paul James, 1978-Ion channelsDirectional hearingNeurons--PhysiologyPrincipal neurons of the medial superior olive (MSO) encode low-frequency sound localization cues by comparing the relative arrival time of sound to the two ears. In mammals, MSO neurons display biophysical specializations, such as voltage-gated sodium (Na[subscript v]) and potassium (K[subscript v]) channels that enable them to detect these cues with microsecond precision. In this dissertation electrophysiological techniques were used to examine the specific channel properties and functional role these channels play in MSO neurons following hearing onset. In addition, computational models that incorporated these physiological data were used to further study how the specific properties of these channels facilitate MSO function. Experiments in this dissertation showed that Na[subscript v] channels are heavily expressed in the persisomatic region of MSO neurons, but unlike those expressed in other neurons they minimally contribute to action potential generation. This is likely due to the low percentage of channels available for activation at the resting membrane potential. Current clamp recordings determined that Na[subscript v] channels counterbalance K[subscript v] channels voltage rectification by boosting near action potential threshold excitatory post-synaptic potentials (EPSPs). Further, computational modeling revealed that synaptic inputs are larger at the soma with Na[subscript v] channels restricted to the soma than when they are evenly distributed throughout the soma and dendrites. During the first few weeks after hearing onset current clamp experiments showed EPSP duration decreased while the temporal resolution for detecting the arrival time of synaptic inputs increased. These changes in EPSP duration are due in part to both the development of faster membrane response properties and increases in the expression of low voltage-activated K[subscript v] channels (K[subscript LVA]). Further investigation determined these channels display a somatically enriched distribution and act to counterbalance the distortions that result from dendritic cable filtering. This is accomplished by K[subscript LVA] actively decreasing the duration of EPSPs in a voltage dependent manner. Computational modeling confirmed these results as well as illustrating their effects on the integration of mono- versus bilateral excitation. Together these findings indicate that the expression of specialized Na[subscript v] and K[subscript v] channels facilitate the neuron’s computational task, detecting and comparing the relative timing of synaptic inputs used in low frequency sound localization.text2012-10-09T17:47:58Z2012-10-09T17:47:58Z2008-122012-10-09electronichttp://hdl.handle.net/2152/18247engCopyright is held by the author. Presentation of this material on the Libraries' web site by University Libraries, The University of Texas at Austin was made possible under a limited license grant from the author who has retained all copyrights in the works.
collection NDLTD
language English
format Others
sources NDLTD
topic Ion channels
Directional hearing
Neurons--Physiology
spellingShingle Ion channels
Directional hearing
Neurons--Physiology
Mathews, Paul James, 1978-
Voltage gated ion channels shape subthreshold synaptic integration in principal neurons of the medial superior olive
description Principal neurons of the medial superior olive (MSO) encode low-frequency sound localization cues by comparing the relative arrival time of sound to the two ears. In mammals, MSO neurons display biophysical specializations, such as voltage-gated sodium (Na[subscript v]) and potassium (K[subscript v]) channels that enable them to detect these cues with microsecond precision. In this dissertation electrophysiological techniques were used to examine the specific channel properties and functional role these channels play in MSO neurons following hearing onset. In addition, computational models that incorporated these physiological data were used to further study how the specific properties of these channels facilitate MSO function. Experiments in this dissertation showed that Na[subscript v] channels are heavily expressed in the persisomatic region of MSO neurons, but unlike those expressed in other neurons they minimally contribute to action potential generation. This is likely due to the low percentage of channels available for activation at the resting membrane potential. Current clamp recordings determined that Na[subscript v] channels counterbalance K[subscript v] channels voltage rectification by boosting near action potential threshold excitatory post-synaptic potentials (EPSPs). Further, computational modeling revealed that synaptic inputs are larger at the soma with Na[subscript v] channels restricted to the soma than when they are evenly distributed throughout the soma and dendrites. During the first few weeks after hearing onset current clamp experiments showed EPSP duration decreased while the temporal resolution for detecting the arrival time of synaptic inputs increased. These changes in EPSP duration are due in part to both the development of faster membrane response properties and increases in the expression of low voltage-activated K[subscript v] channels (K[subscript LVA]). Further investigation determined these channels display a somatically enriched distribution and act to counterbalance the distortions that result from dendritic cable filtering. This is accomplished by K[subscript LVA] actively decreasing the duration of EPSPs in a voltage dependent manner. Computational modeling confirmed these results as well as illustrating their effects on the integration of mono- versus bilateral excitation. Together these findings indicate that the expression of specialized Na[subscript v] and K[subscript v] channels facilitate the neuron’s computational task, detecting and comparing the relative timing of synaptic inputs used in low frequency sound localization. === text
author Mathews, Paul James, 1978-
author_facet Mathews, Paul James, 1978-
author_sort Mathews, Paul James, 1978-
title Voltage gated ion channels shape subthreshold synaptic integration in principal neurons of the medial superior olive
title_short Voltage gated ion channels shape subthreshold synaptic integration in principal neurons of the medial superior olive
title_full Voltage gated ion channels shape subthreshold synaptic integration in principal neurons of the medial superior olive
title_fullStr Voltage gated ion channels shape subthreshold synaptic integration in principal neurons of the medial superior olive
title_full_unstemmed Voltage gated ion channels shape subthreshold synaptic integration in principal neurons of the medial superior olive
title_sort voltage gated ion channels shape subthreshold synaptic integration in principal neurons of the medial superior olive
publishDate 2012
url http://hdl.handle.net/2152/18247
work_keys_str_mv AT mathewspauljames1978 voltagegatedionchannelsshapesubthresholdsynapticintegrationinprincipalneuronsofthemedialsuperiorolive
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