Modeling Resting-State Functional Networks When the Cortex Falls Asleep: Local and Global Changes
Gustavo Deco, P. Hagmann, Anthony G. Hudetz, Giulio Tononi
Cerebral Cortex July 10, 2013 DOI: 10.1093/cercor/bht176 via OpenAlex
Summary
AI-generated from the abstractThe transition from wakefulness to sleep involves gradual neural changes rather than an abrupt shift. Local slow waves appear during wakefulness and increase as arousal-promoting neuromodulation decreases, while resting-state brain networks maintain their overall organization. Only when neuromodulation drops to very low levels do slow waves become global and resting-state networks merge into a single synchronized network.
Study at a glance
| Characteristics | Computational modeling study Peer reviewed |
|---|---|
| Keywords | Resting State FMRI Neuroscience Neuromodulation Wakefulness Psychology |
| Citations | 99 |
| Key finding | Local slow waves appear during the wake-to-sleep transition and are structured within resting-state networks, which only merge into a single network at very low neuromodulation levels. |
Abstract
The transition from wakefulness to sleep represents the most conspicuous change in behavior and the level of consciousness occurring in the healthy brain. It is accompanied by similarly conspicuous changes in neural dynamics, traditionally exemplified by the change from "desynchronized" electroencephalogram activity in wake to globally synchronized slow wave activity of early sleep. However, unit and local field recordings indicate that the transition is more gradual than it might appear: On one hand, local slow waves already appear during wake; on the other hand, slow sleep waves are only rarely global. Studies with functional magnetic resonance imaging also reveal changes in resting-state functional connectivity (FC) between wake and slow wave sleep. However, it remains unclear how resting-state networks may change during this transition period. Here, we employ large-scale modeling of the human cortico-cortical anatomical connectivity to evaluate changes in resting-state FC when the model "falls asleep" due to the progressive decrease in arousal-promoting neuromodulation. When cholinergic neuromodulation is parametrically decreased, local slow waves appear, while the overall organization of resting-state networks does not change. Furthermore, we show that these local slow waves are structured macroscopically in networks that resemble the resting-state networks. In contrast, when the neuromodulator decrease further to very low levels, slow waves become global and resting-state networks merge into a single undifferentiated, broadly synchronized network.