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Formation of neural networks with structural and functional features consistent with small-world network topology on surface-grafted polymer particles

Valderhaug, Vibeke Devold (author)
Glomm, Wilhelm Robert (author)
Sandru, Eugenia Mariana (author)
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Yasuda, Masahiro (author)
Sandvig, Axel (author)
Department of Neuromedicine and Movement Science, Faculty of Medicine, Norwegian University of Science and Technology (NTNU), Trondheim, Norway; Department of Neurology and Clinical Neuroophysiology, St Olav’s Hospital, Trondheim, Norway; Department of Pharmacology and Clinical Neuroscience, Division of Neuro, Head and Neck, Umeå University Hospital, Umeå, Sweden
Sandvig, Ioanna (author)
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 (creator_code:org_t)
2019-10-23
2019
English.
In: Royal Society Open Science. - : Royal Society Publishing. - 2054-5703. ; 6:10
  • Journal article (peer-reviewed)
Abstract Subject headings
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  • In vitro electrophysiological investigation of neural activity at a network level holds tremendous potential for elucidating underlying features of brain function (and dysfunction). In standard neural network modelling systems, however, the fundamental three-dimensional (3D) character of the brain is a largely disregarded feature. This widely applied neuroscientific strategy affects several aspects of the structure-function relationships of the resulting networks, altering network connectivity and topology, ultimately reducing the translatability of the results obtained. As these model systems increase in popularity, it becomes imperative that they capture, as accurately as possible, fundamental features of neural networks in the brain, such as small-worldness. In this report, we combine in vitro neural cell culture with a biologically compatible scaffolding substrate, surface-grafted polymer particles (PPs), to develop neural networks with 3D topology. Furthermore, we investigate their electrophysiological network activity through the use of 3D multielectrode arrays. The resulting neural network activity shows emergent behaviour consistent with maturing neural networks capable of performing computations, i.e. activity patterns suggestive of both information segregation (desynchronized single spikes and local bursts) and information integration (network spikes). Importantly, we demonstrate that the resulting PP-structured neural networks show both structural and functional features consistent with small-world network topology.

Subject headings

MEDICIN OCH HÄLSOVETENSKAP  -- Klinisk medicin -- Neurologi (hsv//swe)
MEDICAL AND HEALTH SCIENCES  -- Clinical Medicine -- Neurology (hsv//eng)

Keyword

connectivity
electrophysiology
neural networks
polymer particles
small-world
three-dimensional structuring
Neurology
neurologi

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ref (subject category)
art (subject category)

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