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Local networks from different parts of the human cerebral cortex generate and share the same population dynamic.
Willumsen, Alex; Midtgaard, Jens; Jespersen, Bo; Hansen, Christoffer K K; Lam, Salina N; Hansen, Sabine; Kupers, Ron; Fabricius, Martin E; Litman, Minna; Pinborg, Lars; Tascón-Vidarte, José D; Sabers, Anne; Roland, Per E.
Afiliação
  • Willumsen A; Department of Neuroscience, Panum Institute, University of Copenhagen, Denmark.
  • Midtgaard J; Department of Neuroscience, Panum Institute, University of Copenhagen, Denmark.
  • Jespersen B; Department of Neurosurgery, Rigshospitalet, University Hospital of Copenhagen, Denmark.
  • Hansen CKK; Department of Neuroscience, Panum Institute, University of Copenhagen, Denmark.
  • Lam SN; Department of Neuroscience, Panum Institute, University of Copenhagen, Denmark.
  • Hansen S; Department of Neuroscience, Panum Institute, University of Copenhagen, Denmark.
  • Kupers R; Department of Neuroscience, Panum Institute, University of Copenhagen, Denmark.
  • Fabricius ME; Department of Neurosurgery, Rigshospitalet, University Hospital of Copenhagen, Denmark.
  • Litman M; Department of Clinical Neurophysiology, Rigshospitalet, University Hospital of Copenhagen, Denmark.
  • Pinborg L; Epilepsy Clinic, Department of Neurology, Rigshospitalet, University Hospital of Copenhagen, Denmark.
  • Tascón-Vidarte JD; Epilepsy Clinic, Department of Neurology, Rigshospitalet, University Hospital of Copenhagen, Denmark.
  • Sabers A; Neurobiology Research Unit, Department of Neurology, Rigshospitalet, University Hospital of Copenhagen, Denmark.
  • Roland PE; DIKU, Department of Computer Sciences, University of Copenhagen, Denmark.
Cereb Cortex Commun ; 3(4): tgac040, 2022.
Article em En | MEDLINE | ID: mdl-36530950
ABSTRACT
A major goal of neuroscience is to reveal mechanisms supporting collaborative actions of neurons in local and larger-scale networks. However, no clear overall principle of operation has emerged despite decades-long experimental efforts. Here, we used an unbiased method to extract and identify the dynamics of local postsynaptic network states contained in the cortical field potential. Field potentials were recorded by depth electrodes targeting a wide selection of cortical regions during spontaneous activities, and sensory, motor, and cognitive experimental tasks. Despite different architectures and different activities, all local cortical networks generated the same type of dynamic confined to one region only of state space. Surprisingly, within this region, state trajectories expanded and contracted continuously during all brain activities and generated a single expansion followed by a contraction in a single trial. This behavior deviates from known attractors and attractor networks. The state-space contractions of particular subsets of brain regions cross-correlated during perceptive, motor, and cognitive tasks. Our results imply that the cortex does not need to change its dynamic to shift between different activities, making task-switching inherent in the dynamic of collective cortical operations. Our results provide a mathematically described general explanation of local and larger scale cortical dynamic.
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Texto completo: 1 Base de dados: MEDLINE Idioma: En Revista: Cereb Cortex Commun Ano de publicação: 2022 Tipo de documento: Article País de afiliação: Dinamarca

Texto completo: 1 Base de dados: MEDLINE Idioma: En Revista: Cereb Cortex Commun Ano de publicação: 2022 Tipo de documento: Article País de afiliação: Dinamarca