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Emergence of High-Order Functional Hubs in the Human Brain

Santos, F. A. N.; Tewarie, P. K. B.; Baudot, P.; Luchicchi, A.; Barros de Souza, D. A. N.; Girier, G.; Milan, A. P.; Broeders, T.; Centeno, E. G. Z.; Cofre, R.; Rosas, F. E.; Carone, D.; Kennedy, J.; Stam, C. J.; Hillebrand, A.; Desroches, M.; Rodrigues, S.; Schoonheim, M.; Douw, L.; Quax, R.

2023-02-12 neuroscience
10.1101/2023.02.10.528083 bioRxiv
Show abstract

Network theory is often based on pairwise relationships between nodes, which is not necessarily realistic for modeling complex systems. Importantly, it does not accurately capture non-pairwise interactions in the human brain, often considered one of the most complex systems. In this work, we develop a multivariate signal processing pipeline to build high-order networks from time series and apply it to resting-state functional magnetic resonance imaging (fMRI) signals to characterize high-order communication between brain regions. We also propose connectivity and signal processing rules for building uniform hypergraphs and argue that each multivariate interdependence metric could define weights in a hypergraph. As a proof of concept, we investigate the most relevant three-point interactions in the human brain by searching for high-order "hubs" in a cohort of 100 individuals from the Human Connectome Project. We find that, for each choice of multivariate interdependence, the high-order hubs are compatible with distinct systems in the brain. Additionally, the high-order functional brain networks exhibit simultaneous integration and segregation patterns qualitatively observable from their high-order hubs. Our work hereby introduces a promising heuristic route for hypergraph representation of brain activity and opens up exciting avenues for further research in high-order network neuroscience and complex systems.

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