Dynamic causal modeling of hippocampal links within the human default mode network: Lateralization and computational stability of effective connections

The purpose of this paper was to study causal relationships between left and right hippocampal regions (LHIP and RHIP, respectively) within the default mode network (DMN) as represented by its key structures: the medial prefrontal cortex (MPFC), posterior cingulate cortex (PCC) and the inferior pari...

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Main Authors: Vadim Leonidovich Ushakov, Maksim Sharaev, Sergey Ivanovich Kartashov, Viktoria Zavyalova, Vitaliy Verkhliutov, Boris Mitrofanovich Velichkovsky
Format: Article
Language:English
Published: Frontiers Media S.A. 2016-10-01
Series:Frontiers in Human Neuroscience
Subjects:
DCM
Online Access:http://journal.frontiersin.org/Journal/10.3389/fnhum.2016.00528/full
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spelling doaj-2711f0f30d7944238cd7535937a14c4e2020-11-25T02:10:03ZengFrontiers Media S.A.Frontiers in Human Neuroscience1662-51612016-10-011010.3389/fnhum.2016.00528213204Dynamic causal modeling of hippocampal links within the human default mode network: Lateralization and computational stability of effective connectionsVadim Leonidovich Ushakov0Vadim Leonidovich Ushakov1Maksim Sharaev2Sergey Ivanovich Kartashov3Viktoria Zavyalova4Vitaliy Verkhliutov5Boris Mitrofanovich Velichkovsky6Boris Mitrofanovich Velichkovsky7Boris Mitrofanovich Velichkovsky8National Research Centre “Kurchatov Institute”National Research Nuclear University “MEPhI”National Research Centre “Kurchatov Institute”National Research Centre “Kurchatov Institute”National Research Centre “Kurchatov Institute”Institute for Higher Nervous Activity and Neurophysiology, Russian Academy of SciencesNational Research Centre “Kurchatov Institute”Moscow Institute of Physics and TechnologyM.V. Lomonosov Moscow State UniversityThe purpose of this paper was to study causal relationships between left and right hippocampal regions (LHIP and RHIP, respectively) within the default mode network (DMN) as represented by its key structures: the medial prefrontal cortex (MPFC), posterior cingulate cortex (PCC) and the inferior parietal cortex of left (LIPC) and right (RIPC) hemispheres. Furthermore, we were interested in testing the stability of the connectivity patterns when adding or deleting regions of interest. The functional magnetic resonance imaging (fMRI) data from a group of 30 healthy right-handed subjects in the resting state were collected and a connectivity analysis was performed. To model the effective connectivity, we used the spectral Dynamic Causal Modeling (DCM). Three DCM analyses were completed. Two of them modeled interaction between five nodes that included four DMN key structures in addition to either LHIP or RHIP. The last DCM analysis modeled interactions between four nodes whereby one of the main DMN structures, PCC, was excluded from the analysis. The results of all DCM analyses indicated a high level of stability in the computational method: those parts of the winning models that included the key DMN structures demonstrated causal relations known from recent research. However, we discovered new results as well. First of all, we found a pronounced asymmetry in LHIP and RHIP connections. LHIP demonstrated a high involvement of DMN activity with preponderant information outflow to all other DMN regions. Causal interactions of LHIP were bidirectional only in the case of LIPC. On the contrary, RHIP was primarily affected by inputs from LIPC, RIPC and LHIP without influencing these or other DMN key structures. For the first time, an inhibitory link was found from MPFC to LIPC, which may indicate the subjects’ effort to maintain a resting state. Functional connectivity data echoed these results, though they also showed links not reflected in the patterns of effective connectivity. We suggest that such lateralized architecture of hippocampal connections may be related to lateralization phenomena in verbal and spatial domains documented in human neurophysiology, neuropsychology and neurolinguistics.http://journal.frontiersin.org/Journal/10.3389/fnhum.2016.00528/fulleffective connectivityDefault Mode Networkfunctional connectivityDCMresting state networkshippocampal asymmetry
collection DOAJ
language English
format Article
sources DOAJ
author Vadim Leonidovich Ushakov
Vadim Leonidovich Ushakov
Maksim Sharaev
Sergey Ivanovich Kartashov
Viktoria Zavyalova
Vitaliy Verkhliutov
Boris Mitrofanovich Velichkovsky
Boris Mitrofanovich Velichkovsky
Boris Mitrofanovich Velichkovsky
spellingShingle Vadim Leonidovich Ushakov
Vadim Leonidovich Ushakov
Maksim Sharaev
Sergey Ivanovich Kartashov
Viktoria Zavyalova
Vitaliy Verkhliutov
Boris Mitrofanovich Velichkovsky
Boris Mitrofanovich Velichkovsky
Boris Mitrofanovich Velichkovsky
Dynamic causal modeling of hippocampal links within the human default mode network: Lateralization and computational stability of effective connections
Frontiers in Human Neuroscience
effective connectivity
Default Mode Network
functional connectivity
DCM
resting state networks
hippocampal asymmetry
author_facet Vadim Leonidovich Ushakov
Vadim Leonidovich Ushakov
Maksim Sharaev
Sergey Ivanovich Kartashov
Viktoria Zavyalova
Vitaliy Verkhliutov
Boris Mitrofanovich Velichkovsky
Boris Mitrofanovich Velichkovsky
Boris Mitrofanovich Velichkovsky
author_sort Vadim Leonidovich Ushakov
title Dynamic causal modeling of hippocampal links within the human default mode network: Lateralization and computational stability of effective connections
title_short Dynamic causal modeling of hippocampal links within the human default mode network: Lateralization and computational stability of effective connections
title_full Dynamic causal modeling of hippocampal links within the human default mode network: Lateralization and computational stability of effective connections
title_fullStr Dynamic causal modeling of hippocampal links within the human default mode network: Lateralization and computational stability of effective connections
title_full_unstemmed Dynamic causal modeling of hippocampal links within the human default mode network: Lateralization and computational stability of effective connections
title_sort dynamic causal modeling of hippocampal links within the human default mode network: lateralization and computational stability of effective connections
publisher Frontiers Media S.A.
series Frontiers in Human Neuroscience
issn 1662-5161
publishDate 2016-10-01
description The purpose of this paper was to study causal relationships between left and right hippocampal regions (LHIP and RHIP, respectively) within the default mode network (DMN) as represented by its key structures: the medial prefrontal cortex (MPFC), posterior cingulate cortex (PCC) and the inferior parietal cortex of left (LIPC) and right (RIPC) hemispheres. Furthermore, we were interested in testing the stability of the connectivity patterns when adding or deleting regions of interest. The functional magnetic resonance imaging (fMRI) data from a group of 30 healthy right-handed subjects in the resting state were collected and a connectivity analysis was performed. To model the effective connectivity, we used the spectral Dynamic Causal Modeling (DCM). Three DCM analyses were completed. Two of them modeled interaction between five nodes that included four DMN key structures in addition to either LHIP or RHIP. The last DCM analysis modeled interactions between four nodes whereby one of the main DMN structures, PCC, was excluded from the analysis. The results of all DCM analyses indicated a high level of stability in the computational method: those parts of the winning models that included the key DMN structures demonstrated causal relations known from recent research. However, we discovered new results as well. First of all, we found a pronounced asymmetry in LHIP and RHIP connections. LHIP demonstrated a high involvement of DMN activity with preponderant information outflow to all other DMN regions. Causal interactions of LHIP were bidirectional only in the case of LIPC. On the contrary, RHIP was primarily affected by inputs from LIPC, RIPC and LHIP without influencing these or other DMN key structures. For the first time, an inhibitory link was found from MPFC to LIPC, which may indicate the subjects’ effort to maintain a resting state. Functional connectivity data echoed these results, though they also showed links not reflected in the patterns of effective connectivity. We suggest that such lateralized architecture of hippocampal connections may be related to lateralization phenomena in verbal and spatial domains documented in human neurophysiology, neuropsychology and neurolinguistics.
topic effective connectivity
Default Mode Network
functional connectivity
DCM
resting state networks
hippocampal asymmetry
url http://journal.frontiersin.org/Journal/10.3389/fnhum.2016.00528/full
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