Unravelling consciousness and brain function through the lens of time, space, and information
Andrea I. Luppi, Fernando E. Rosas, Pedro A. M. Mediano, Athena Demertzi, David Menon, Emmanuel A. Stamatakis
Trends in Neurosciences May 31, 2024 DOI: 10.1016/j.tins.2024.05.007 via OpenAlex
Summary
AI-generated from the abstractUnconsciousness increases the coupling between brain structure and function across scales, while psychedelics may decouple brain function from structure. Anaesthetics, psychedelics, and disorders of consciousness can produce similar reconfigurations along the brain's unimodal-transmodal functional axis. Decomposing brain function into fundamental constituents of time, space, and information has driven recent advances in understanding consciousness and the brain's functional organisation. Computational modelling offers a path toward mechanistic integration, and decomposition approaches may help translate discoveries across species.
Study at a glance
| Characteristics | Review Peer reviewed |
|---|---|
| Keywords | Cognitive science Neuroscience Function biology Unconsciousness Cognition |
| Citations | 23 |
| Key finding | Unconsciousness increases structure-function coupling across scales, while psychedelics may decouple brain function from structure; anaesthetics, psychedelics, and disorders of consciousness can produce similar reconfigurations of the brain's unimodal-transmodal functional axis. |
Abstract
Disentangling how cognitive functions emerge from the interplay of brain dynamics and network architecture is among the major challenges that neuroscientists face. Pharmacological and pathological perturbations of consciousness provide a lens to investigate these complex challenges. Here, we review how recent advances about consciousness and the brain's functional organisation have been driven by a common denominator: decomposing brain function into fundamental constituents of time, space, and information. Whereas unconsciousness increases structure-function coupling across scales, psychedelics may decouple brain function from structure. Convergent effects also emerge: anaesthetics, psychedelics, and disorders of consciousness can exhibit similar reconfigurations of the brain's unimodal-transmodal functional axis. Decomposition approaches reveal the potential to translate discoveries across species, with computational modelling providing a path towards mechanistic integration.