Living on the edge: network neuroscience beyond nodes

RF Betzel, J Faskowitz, O Sporns - Trends in cognitive sciences, 2023 - cell.com
Network neuroscience has emphasized the connectional properties of neural elements–
cells, populations, and regions. This has come at the expense of the anatomical and …

Edge-centric analysis of time-varying functional brain networks with applications in autism spectrum disorder

FZ Esfahlani, L Byrge, J Tanner, O Sporns… - NeuroImage, 2022 - Elsevier
The interaction between brain regions changes over time, which can be characterized using
time-varying functional connectivity (tvFC). The common approach to estimate tvFC uses …

High-amplitude network co-fluctuations linked to variation in hormone concentrations over the menstrual cycle

S Greenwell, J Faskowitz, L Pritschet… - Network …, 2023 - direct.mit.edu
Many studies have shown that the human endocrine system modulates brain function,
reporting associations between fluctuations in hormone concentrations and brain …

How much data do we need? Lower bounds of brain activation states to predict human cognitive ability

MH Wehrheim, J Faskowitz, O Sporns, CJ Fiebach… - BioRxiv, 2022 - biorxiv.org
Human functional brain connectivity can be temporally decomposed into states of high and
low cofluctuation, defined as coactivation of brain regions over time. Despite their low …

[HTML][HTML] Cortical network reconfiguration aligns with shifts of basal ganglia and cerebellar influence

K Nestor, J Rasero, R Betzel, PJ Gianaros, T Verstynen - ArXiv, 2024 - pmc.ncbi.nlm.nih.gov
Mammalian functional architecture flexibly adapts, transitioning from integration where
information is distributed across the cortex, to segregation where information is focal in …

[HTML][HTML] Few temporally distributed brain connectivity states predict human cognitive abilities

MH Wehrheim, J Faskowitz, O Sporns, CJ Fiebach… - NeuroImage, 2023 - Elsevier
Human functional brain connectivity can be temporally decomposed into states of high and
low cofluctuation, defined as coactivation of brain regions over time. Rare states of …