Adaptation Modulates Spike-Phase Coupling Tuning Curve in the Rat Primary Auditory Cortex

Adaptation is an important mechanism that causes a decrease in the neural response both in terms of local field potentials (LFP) and spiking activity. We previously showed this reduction effect in the tuning curve of the primary auditory cortex. Moreover, we revealed that a repeated stimulus reduces...

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Main Authors: Mohammad Zarei, Mohsen Parto Dezfouli, Mehran Jahed, Mohammad Reza Daliri
Format: Article
Language:English
Published: Frontiers Media S.A. 2020-08-01
Series:Frontiers in Systems Neuroscience
Subjects:
Online Access:https://www.frontiersin.org/article/10.3389/fnsys.2020.00055/full
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spelling doaj-5d6b41f3466b41aca50a059d068047812020-11-25T02:50:01ZengFrontiers Media S.A.Frontiers in Systems Neuroscience1662-51372020-08-011410.3389/fnsys.2020.00055549736Adaptation Modulates Spike-Phase Coupling Tuning Curve in the Rat Primary Auditory CortexMohammad Zarei0Mohammad Zarei1Mohsen Parto Dezfouli2Mohsen Parto Dezfouli3Mehran Jahed4Mohammad Reza Daliri5Mohammad Reza Daliri6School of Cognitive Sciences (SCS), Institute for Research in Fundamental Sciences (IPM), Tehran, IranSchool of Electrical Engineering, Sharif University of Technology (SUT), Tehran, IranSchool of Cognitive Sciences (SCS), Institute for Research in Fundamental Sciences (IPM), Tehran, IranNeuroscience and Neuroengineering Research Laboratory, Department of Biomedical Engineering, School of Electrical Engineering, Iran University of Science and Technology (IUST), Tehran, IranSchool of Electrical Engineering, Sharif University of Technology (SUT), Tehran, IranSchool of Cognitive Sciences (SCS), Institute for Research in Fundamental Sciences (IPM), Tehran, IranNeuroscience and Neuroengineering Research Laboratory, Department of Biomedical Engineering, School of Electrical Engineering, Iran University of Science and Technology (IUST), Tehran, IranAdaptation is an important mechanism that causes a decrease in the neural response both in terms of local field potentials (LFP) and spiking activity. We previously showed this reduction effect in the tuning curve of the primary auditory cortex. Moreover, we revealed that a repeated stimulus reduces the neural response in terms of spike-phase coupling (SPC). In the current study, we examined the effect of adaptation on the SPC tuning curve. To this end, employing the phase-locking value (PLV) method, we estimated the spike-LFP coupling. The data was obtained by a simultaneous recording from four single-electrodes in the primary auditory cortex of 15 rats. We first investigated whether the neural system may use spike-LFP phase coupling in the primary auditory cortex to encode sensory information. Secondly, we investigated the effect of adaptation on this potential SPC tuning. Our data showed that the coupling between spikes’ times and the LFP phase in beta oscillations represents sensory information (different stimulus frequencies), with an inverted bell-shaped tuning curve. Furthermore, we showed that adaptation to a specific frequency modulates SPC tuning curve of the adapter and its neighboring frequencies. These findings could be useful for interpretation of feature representation in terms of SPC and the underlying neural mechanism of adaptation.https://www.frontiersin.org/article/10.3389/fnsys.2020.00055/fullneural adaptationspike-LFP couplingauditory cortexsensory codingtuning curve
collection DOAJ
language English
format Article
sources DOAJ
author Mohammad Zarei
Mohammad Zarei
Mohsen Parto Dezfouli
Mohsen Parto Dezfouli
Mehran Jahed
Mohammad Reza Daliri
Mohammad Reza Daliri
spellingShingle Mohammad Zarei
Mohammad Zarei
Mohsen Parto Dezfouli
Mohsen Parto Dezfouli
Mehran Jahed
Mohammad Reza Daliri
Mohammad Reza Daliri
Adaptation Modulates Spike-Phase Coupling Tuning Curve in the Rat Primary Auditory Cortex
Frontiers in Systems Neuroscience
neural adaptation
spike-LFP coupling
auditory cortex
sensory coding
tuning curve
author_facet Mohammad Zarei
Mohammad Zarei
Mohsen Parto Dezfouli
Mohsen Parto Dezfouli
Mehran Jahed
Mohammad Reza Daliri
Mohammad Reza Daliri
author_sort Mohammad Zarei
title Adaptation Modulates Spike-Phase Coupling Tuning Curve in the Rat Primary Auditory Cortex
title_short Adaptation Modulates Spike-Phase Coupling Tuning Curve in the Rat Primary Auditory Cortex
title_full Adaptation Modulates Spike-Phase Coupling Tuning Curve in the Rat Primary Auditory Cortex
title_fullStr Adaptation Modulates Spike-Phase Coupling Tuning Curve in the Rat Primary Auditory Cortex
title_full_unstemmed Adaptation Modulates Spike-Phase Coupling Tuning Curve in the Rat Primary Auditory Cortex
title_sort adaptation modulates spike-phase coupling tuning curve in the rat primary auditory cortex
publisher Frontiers Media S.A.
series Frontiers in Systems Neuroscience
issn 1662-5137
publishDate 2020-08-01
description Adaptation is an important mechanism that causes a decrease in the neural response both in terms of local field potentials (LFP) and spiking activity. We previously showed this reduction effect in the tuning curve of the primary auditory cortex. Moreover, we revealed that a repeated stimulus reduces the neural response in terms of spike-phase coupling (SPC). In the current study, we examined the effect of adaptation on the SPC tuning curve. To this end, employing the phase-locking value (PLV) method, we estimated the spike-LFP coupling. The data was obtained by a simultaneous recording from four single-electrodes in the primary auditory cortex of 15 rats. We first investigated whether the neural system may use spike-LFP phase coupling in the primary auditory cortex to encode sensory information. Secondly, we investigated the effect of adaptation on this potential SPC tuning. Our data showed that the coupling between spikes’ times and the LFP phase in beta oscillations represents sensory information (different stimulus frequencies), with an inverted bell-shaped tuning curve. Furthermore, we showed that adaptation to a specific frequency modulates SPC tuning curve of the adapter and its neighboring frequencies. These findings could be useful for interpretation of feature representation in terms of SPC and the underlying neural mechanism of adaptation.
topic neural adaptation
spike-LFP coupling
auditory cortex
sensory coding
tuning curve
url https://www.frontiersin.org/article/10.3389/fnsys.2020.00055/full
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AT mohsenpartodezfouli adaptationmodulatesspikephasecouplingtuningcurveintheratprimaryauditorycortex
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