A multiplex of connectome trajectories enables several connectivity patterns in parallel

Author:

Mostame Parham12ORCID,Wirsich Jonathan3ORCID,Alderson Thomas H12ORCID,Ridley Ben45ORCID,Giraud Anne-Lise6,Carmichael David W78ORCID,Vulliemoz Serge3ORCID,Guye Maxime49ORCID,Lemieux Louis1011ORCID,Sadaghiani Sepideh12ORCID

Affiliation:

1. Department of psychology, University of Illinois at Urbana-Champaign

2. Beckman Institute for Advanced Science and Technology, University of Illinois at Urbana-Champaign

3. EEG and Epilepsy Unit, University Hospitals and Faculty of Medicine of Geneva, University of Geneva

4. Aix Marseille Univ, CNRS, CRMBM

5. IRCCS Istituto delle Scienze Neurologiche di Bologna

6. Department of Neuroscience, University of Geneva

7. Developmental Imaging and Biophysics Section, UCL Great Ormond Street Institute of Child Health

8. School of Biomedical Engineering and Imaging Sciences, King’s College London, St Thomas’ Hospital

9. AP-HM, Hôpital Universitaire Timone, Pôle d’Imagerie Médicale, CEMEREM

10. Department of Clinical and Experimental Epilepsy, UCL Queen Square Institute of Neurology

11. Epilepsy Society MRI Unit

Abstract

Complex brain function comprises a multitude of neural operations in parallel and often at different speeds. Each of these operations is carried out across a network of distributed brain regions. How multiple distributed processes are facilitated in parallel is largely unknown. We postulate that such processing relies on a multiplex of dynamic network patterns emerging in parallel but from different functional connectivity (FC) timescales. Given the dominance of inherently slow fMRI in network science, it is unknown whether the brain leverages such multi-timescale network dynamics.We studied FC dynamics concurrently across a breadth of timescales (from infraslow to γ-range) in rare, simultaneously recorded intracranial EEG and fMRI in humans, and source-localized scalp EEG-fMRI data. We examined spatial and temporal convergence of connectome trajectories across timescales. ‘Spatial convergence’ refers to spatially similar EEG and fMRI connectome patterns, while ‘temporal convergence’ signifies the more specific case of spatial convergence at corresponding timepoints in EEG and fMRI.We observed spatial convergence but temporal divergence across FC timescales; connectome states (recurrent FC patterns) with partial spatial similarity were found in fMRI and all EEG frequency bands, but these occurred asynchronously across FC timescales. Our findings suggest that hemodynamic and frequency-specific electrophysiological signals, while involving similar large-scale networks, represent functionally distinct connectome trajectories that operate at different FC speeds and in parallel. This multiplex is poised to enable concurrent connectivity across multiple sets of brain regions independently.

Publisher

eLife Sciences Publications, Ltd

Reference79 articles.

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