Collective Dynamics of Neural Networks With Sleep-Related Biological Drives in Drosophila

The collective electrophysiological dynamics of the brain as a result of sleep-related biological drives in Drosophila are investigated in this paper. Based on the Huber-Braun thermoreceptor model, the conductance-based neurons model is extended to a coupled neural network to analyze the local field...

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Main Authors: Shuihan Qiu, Kaijia Sun, Zengru Di
Format: Article
Language:English
Published: Frontiers Media S.A. 2021-05-01
Series:Frontiers in Computational Neuroscience
Subjects:
LFP
Online Access:https://www.frontiersin.org/articles/10.3389/fncom.2021.616193/full
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spelling doaj-7b11f77780834ffaaa0da949bff984062021-05-03T04:50:43ZengFrontiers Media S.A.Frontiers in Computational Neuroscience1662-51882021-05-011510.3389/fncom.2021.616193616193Collective Dynamics of Neural Networks With Sleep-Related Biological Drives in DrosophilaShuihan Qiu0Shuihan Qiu1Kaijia Sun2Zengru Di3Zengru Di4International Academic Center of Complex Systems, Beijing Normal University at Zhuhai, Beijing, ChinaSchool of Systems Science, Beijing Normal University, Beijing, ChinaSchool of Systems Science, Beijing Normal University, Beijing, ChinaInternational Academic Center of Complex Systems, Beijing Normal University at Zhuhai, Beijing, ChinaSchool of Systems Science, Beijing Normal University, Beijing, ChinaThe collective electrophysiological dynamics of the brain as a result of sleep-related biological drives in Drosophila are investigated in this paper. Based on the Huber-Braun thermoreceptor model, the conductance-based neurons model is extended to a coupled neural network to analyze the local field potential (LFP). The LFP is calculated by using two different metrics: the mean value and the distance-dependent LFP. The distribution of neurons around the electrodes is assumed to have a circular or grid distribution on a two-dimensional plane. Regardless of which method is used, qualitatively similar results are obtained that are roughly consistent with the experimental data. During wake, the LFP has an irregular or a regular spike. However, the LFP becomes regular bursting during sleep. To further analyze the results, wavelet analysis and raster plots are used to examine how the LFP frequencies changed. The synchronization of neurons under different network structures is also studied. The results demonstrate that there are obvious oscillations at approximately 8 Hz during sleep that are absent during wake. Different time series of the LFP can be obtained under different network structures and the density of the network will also affect the magnitude of the potential. As the number of coupled neurons increases, the neural network becomes easier to synchronize, but the sleep and wake time described by the LFP spectrogram do not change. Moreover, the parameters that affect the durations of sleep and wake are analyzed.https://www.frontiersin.org/articles/10.3389/fncom.2021.616193/fullcoupled neural networkLFPnetwork structuresynchronizationduration of sleep and wake
collection DOAJ
language English
format Article
sources DOAJ
author Shuihan Qiu
Shuihan Qiu
Kaijia Sun
Zengru Di
Zengru Di
spellingShingle Shuihan Qiu
Shuihan Qiu
Kaijia Sun
Zengru Di
Zengru Di
Collective Dynamics of Neural Networks With Sleep-Related Biological Drives in Drosophila
Frontiers in Computational Neuroscience
coupled neural network
LFP
network structure
synchronization
duration of sleep and wake
author_facet Shuihan Qiu
Shuihan Qiu
Kaijia Sun
Zengru Di
Zengru Di
author_sort Shuihan Qiu
title Collective Dynamics of Neural Networks With Sleep-Related Biological Drives in Drosophila
title_short Collective Dynamics of Neural Networks With Sleep-Related Biological Drives in Drosophila
title_full Collective Dynamics of Neural Networks With Sleep-Related Biological Drives in Drosophila
title_fullStr Collective Dynamics of Neural Networks With Sleep-Related Biological Drives in Drosophila
title_full_unstemmed Collective Dynamics of Neural Networks With Sleep-Related Biological Drives in Drosophila
title_sort collective dynamics of neural networks with sleep-related biological drives in drosophila
publisher Frontiers Media S.A.
series Frontiers in Computational Neuroscience
issn 1662-5188
publishDate 2021-05-01
description The collective electrophysiological dynamics of the brain as a result of sleep-related biological drives in Drosophila are investigated in this paper. Based on the Huber-Braun thermoreceptor model, the conductance-based neurons model is extended to a coupled neural network to analyze the local field potential (LFP). The LFP is calculated by using two different metrics: the mean value and the distance-dependent LFP. The distribution of neurons around the electrodes is assumed to have a circular or grid distribution on a two-dimensional plane. Regardless of which method is used, qualitatively similar results are obtained that are roughly consistent with the experimental data. During wake, the LFP has an irregular or a regular spike. However, the LFP becomes regular bursting during sleep. To further analyze the results, wavelet analysis and raster plots are used to examine how the LFP frequencies changed. The synchronization of neurons under different network structures is also studied. The results demonstrate that there are obvious oscillations at approximately 8 Hz during sleep that are absent during wake. Different time series of the LFP can be obtained under different network structures and the density of the network will also affect the magnitude of the potential. As the number of coupled neurons increases, the neural network becomes easier to synchronize, but the sleep and wake time described by the LFP spectrogram do not change. Moreover, the parameters that affect the durations of sleep and wake are analyzed.
topic coupled neural network
LFP
network structure
synchronization
duration of sleep and wake
url https://www.frontiersin.org/articles/10.3389/fncom.2021.616193/full
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