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Human electromagnetic and haemodynamic networks systematically converge in unimodal cortex and diverge in transmodal cortex

Human electromagnetic and haemodynamic networks systematically converge in unimodal cortex and diverge in transmodal cortex

来源:bioRxiv_logobioRxiv
英文摘要

Abstract Whole-brain neural communication is typically estimated from statistical associations among electromagnetic or haemodynamic time-series. The relationship between functional network architectures recovered from these two types of neural activity remains unknown. Here we map electromagnetic networks (measured using magnetoencephalography; MEG) to haemodynamic networks (measured using functional magnetic resonance imaging; fMRI). We find that the relationship between the two modalities is regionally heterogeneous and systematically follows the cortical hierarchy, with close correspondence in unimodal cortex and poor correspondence in transmodal cortex. Comparison with the BigBrain histological atlas reveals that electromagnetic-haemodynamic coupling is driven by laminar differentiation and neuron density, suggesting that the mapping between the two modalities can be explained by cytoarchitectural variation. Importantly, haemodynamic connectivity cannot be explained by electromagnetic activity in a single frequency band, but rather arises from the mixing of multiple neurophysiological rhythms. Correspondence between the two is largely driven by MEG functional connectivity at the beta (15-29 Hz) frequency band. Collectively, these findings demonstrate highly organized but only partly overlapping patterns of connectivity in MEG and fMRI functional networks, opening fundamentally new avenues for studying the relationship between cortical microarchitecture and multi-modal connectivity patterns.

Misic Bratislav、Baillet Sylvain、Shafiei Golia

McConnell Brain Imaging Centre, Montr¨|al Neurological Institute, McGill UniversityMcConnell Brain Imaging Centre, Montr¨|al Neurological Institute, McGill UniversityMcConnell Brain Imaging Centre, Montr¨|al Neurological Institute, McGill University

10.1101/2021.09.07.458941

生物物理学生物科学现状、生物科学发展生物科学研究方法、生物科学研究技术

Misic Bratislav,Baillet Sylvain,Shafiei Golia.Human electromagnetic and haemodynamic networks systematically converge in unimodal cortex and diverge in transmodal cortex[EB/OL].(2025-03-28)[2025-05-29].https://www.biorxiv.org/content/10.1101/2021.09.07.458941.点此复制

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