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Awake cortex stabilizes traveling waves for global and reliable information routing.

Kaio Misawa, Koji Chinen, Akira Kawabata, Taro Kaiju, Takafumi Suzuki, Yutaka Komura

iScience August 21, 2026 DOI: 10.1016/j.isci.2026.116728 via PubMed

Summary

AI-generated from the abstract

Traveling waves of neural activity serve as a fundamental mode for global information transfer across the cerebral cortex, and their properties differ between wakefulness and anesthesia. Using large-scale electrocorticography arrays in animals, visual-evoked traveling waves during wakefulness were more stable than under anesthesia. Only in the awake state did hierarchical clustering reveal widespread waves with a rich repertoire of motifs. Information flowed more reliably along the direction of wave propagation during wakefulness. These findings provide meso- and macroscopic evidence consistent with theories of consciousness and introduce a framework called informational tuning for characterizing the geometrical relations between neural and informational flows.

Study at a glance

Characteristics Observational study Peer reviewed
Keywords Bioinformatics of unconsciousness Stability and efficiency
Key finding Traveling waves during wakefulness exhibit greater stability and more reliable information flow along their direction of propagation compared to the anesthetized state, with a rich repertoire of wave motifs emerging only in the awake state.

Abstract

How does the brain organize neural information for perception during wakefulness, yet lose such organization under anesthesia? Theories on consciousness hypothesize that perceptual experience arises from global communication across the cerebral cortex. However, the neural substrate that mediates information transfer between cortical regions remains uncertain. Here, developing large-scale and high-density electrocorticography arrays, we demonstrated that traveling waves serve as a fundamental mode for global information transfer. Compared with the anesthetized state, visual-evoked traveling waves during wakefulness exhibited greater stability. Hierarchical clustering uncovered the emergence of widespread waves with a rich repertoire of motifs only in the awake state. By quantifying the fidelity of information routing, we found that information flows more reliably along the direction of wave propagation during wakefulness than under anesthesia. This study provides meso- and macroscopic evidence consistent with theories of consciousness and introduces a framework, informational tuning, for characterizing the geometrical relations between neural and informational flows.

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