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Functional brain network modeling in sub-acute stroke patients and healthy controls during rest and continuous attentive tracking

Erlend S. Dørum, View ORCID ProfileTobias Kaufmann, Dag Alnæs, View ORCID ProfileGeneviève Richard, Knut K. Kolskår, Andreas Engvig, Anne-Marthe Sanders, Kristine Ulrichsen, Hege Ihle-Hansen, Jan Egil Nordvik, View ORCID ProfileLars T. Westlye
doi: https://doi.org/10.1101/644765
Erlend S. Dørum
1Sunnaas Rehabilitation Hospital HT, Nesodden, Norway
2NORMENT, Division of Mental Health and Addiction, Oslo University Hospital & Institute of Clinical Medicine, University of Oslo, Norway
3Department of Psychology, University of Oslo, Norway
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  • For correspondence: erlendsd@hotmail.com l.t.westlye@psykologi.uio.no
Tobias Kaufmann
2NORMENT, Division of Mental Health and Addiction, Oslo University Hospital & Institute of Clinical Medicine, University of Oslo, Norway
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  • ORCID record for Tobias Kaufmann
Dag Alnæs
2NORMENT, Division of Mental Health and Addiction, Oslo University Hospital & Institute of Clinical Medicine, University of Oslo, Norway
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Geneviève Richard
1Sunnaas Rehabilitation Hospital HT, Nesodden, Norway
2NORMENT, Division of Mental Health and Addiction, Oslo University Hospital & Institute of Clinical Medicine, University of Oslo, Norway
3Department of Psychology, University of Oslo, Norway
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Knut K. Kolskår
1Sunnaas Rehabilitation Hospital HT, Nesodden, Norway
2NORMENT, Division of Mental Health and Addiction, Oslo University Hospital & Institute of Clinical Medicine, University of Oslo, Norway
3Department of Psychology, University of Oslo, Norway
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Andreas Engvig
4Department of Internal Medicine, Oslo University Hospital, Norway
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Anne-Marthe Sanders
1Sunnaas Rehabilitation Hospital HT, Nesodden, Norway
2NORMENT, Division of Mental Health and Addiction, Oslo University Hospital & Institute of Clinical Medicine, University of Oslo, Norway
3Department of Psychology, University of Oslo, Norway
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Kristine Ulrichsen
1Sunnaas Rehabilitation Hospital HT, Nesodden, Norway
2NORMENT, Division of Mental Health and Addiction, Oslo University Hospital & Institute of Clinical Medicine, University of Oslo, Norway
3Department of Psychology, University of Oslo, Norway
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Hege Ihle-Hansen
5Department of Geriatric Medicine, Oslo University Hospital, Norway
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Jan Egil Nordvik
6CatoSenteret Rehabilitation Center, Son, Norway
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Lars T. Westlye
2NORMENT, Division of Mental Health and Addiction, Oslo University Hospital & Institute of Clinical Medicine, University of Oslo, Norway
3Department of Psychology, University of Oslo, Norway
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  • ORCID record for Lars T. Westlye
  • For correspondence: erlendsd@hotmail.com l.t.westlye@psykologi.uio.no
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Abstract

A cerebral stroke is characterized by compromised brain function due to an interruption in cerebrovascular blood supply. Although stroke incurs focal damage determined by the vascular territory affected, clinical symptoms commonly involve multiple functions and cognitive faculties that are insufficiently explained by the focal damage alone. Functional connectivity (FC) refers to the synchronous activity between spatially remote brain regions organized in a network of interconnected brain regions. Functional magnetic resonance imaging (fMRI) has advanced this system-level understanding of brain function, elucidating the complexity of stroke outcomes, as well as providing information useful for prognostic and rehabilitation purposes.

We tested for differences in brain network connectivity between a group of patients with minor ischemic strokes in sub-acute phase (n=44) and matched controls (n=100). As neural network configuration is dependent on cognitive effort, we obtained fMRI data during rest and two load levels of a multiple object tacking (MOT) task. Network nodes and time-series were estimated using independent component analysis (ICA) and dual regression, with network edges defined as the partial temporal correlations between node pairs. The full set of edgewise FC went into a cross-validated regularized linear discriminant analysis (rLDA) to classify groups and cognitive load.

MOT task performance and cognitive tests revealed no significant group differences. While multivariate machine learning revealed high sensitivity to experimental condition, with classification accuracies between rest and attentive tracking approaching 100%, group classification was at chance level, with negligible differences between conditions. Repeated measures ANOVA showed significantly stronger synchronization between a temporal node and a sensorimotor node in patients across conditions. Overall, the results revealed high sensitivity of FC indices to task conditions, and suggest relatively small brain network-level disturbances after clinically mild strokes.

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Posted June 09, 2019.
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Functional brain network modeling in sub-acute stroke patients and healthy controls during rest and continuous attentive tracking
Erlend S. Dørum, Tobias Kaufmann, Dag Alnæs, Geneviève Richard, Knut K. Kolskår, Andreas Engvig, Anne-Marthe Sanders, Kristine Ulrichsen, Hege Ihle-Hansen, Jan Egil Nordvik, Lars T. Westlye
bioRxiv 644765; doi: https://doi.org/10.1101/644765
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Functional brain network modeling in sub-acute stroke patients and healthy controls during rest and continuous attentive tracking
Erlend S. Dørum, Tobias Kaufmann, Dag Alnæs, Geneviève Richard, Knut K. Kolskår, Andreas Engvig, Anne-Marthe Sanders, Kristine Ulrichsen, Hege Ihle-Hansen, Jan Egil Nordvik, Lars T. Westlye
bioRxiv 644765; doi: https://doi.org/10.1101/644765

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