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Probing the circuits of conscious perception with magnetophosphenes.

Julien Modolo, Mahmoud Hassan, Giulio Ruffini, Alexandre Legros

Journal of Neural Engineering July 3, 2020 DOI: 10.1088/1741-2552/ab97f7 (opens in new tab) via PubMed

Summary

AI-generated from the abstract

Conscious perception involves large-scale, coordinated activation of distant brain regions, a process called ignition or integration. Combining a magnetically-induced phosphene perception task with electroencephalography, functional cortical networks were identified using graph theory. Conscious phosphene perception activated frequency-specific networks, each linked to a particular spatial scale of information processing. Integration increased within an alpha-band functional network, while segregation changed in the beta band. These findings confirm the key role of integration processes for conscious perception in humans and bring evidence for the functional role of distinct brain oscillations.

Study at a glance

Characteristics Observational study Peer reviewed
Population Humans
Intervention magnetically-induced phosphene perception task
Key finding Conscious phosphene perception activated frequency-specific networks, with integration increasing within an alpha-band functional network and changes in segregation occurring in the beta band.

Abstract

We aimed at characterizing, in non-invasive human brain recordings, the large-scale, coordinated activation of distant brain regions thought to occur during conscious perception. This process is termed ignition in the Global Workspace Theory, and integration in Integrated Information Theory, which are two of the major theories of consciousness. Here, we provide evidence for this process in humans by combining a magnetically-induced phosphene perception task with electroencephalography. Functional cortical networks were identified and characterized using graph theory to quantify the impact of conscious perception on local (segregation) and distant (integration) processing. Conscious phosphene perception activated frequency-specific networks, each associated with a specific spatial scale of information processing. Integration increased within an alpha-band functional network, while changes in segregation occurred in the beta band. These results bring novel evidence for the functional role of distinct brain oscillations and confirm the key role of integration processes for conscious perception in humans.

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