Cortical activity is more stable when sensory stimuli are consciously perceived.
Aaron Schurger, Ioannis Sarigiannidis, Lionel Naccache, Jacobo Sitt, Stanislas Dehaene
Proceedings of the National Academy of Sciences of the United States of America April 21, 2015 DOI: 10.1073/pnas.1418730112 (opens in new tab) via PubMed
Summary
AI-generated from the abstractConscious perception may involve the transient stabilization of distributed cortical networks, corresponding to a global brain-scale decision. Pattern-similarity analyses of MEG/EEG data from participants viewing threshold-level visual stimuli showed a decrease in variability across trials after stimulus onset, followed by a divergence in variability based on subjective report (seen/unseen), with seen trials exhibiting less variability. Within-trial stability alone could classify individual trials as seen or unseen. In patients with disorders of consciousness exposed to auditory stimuli, stability metrics diverged according to clinically diagnosed level of consciousness. Differences in signal strength could not account for these results.
Study at a glance
| Characteristics | Observational study Peer reviewed |
|---|---|
| Population | Participants observing threshold-level visual stimuli; patients with disorders of consciousness exposed to auditory stimuli |
| Keywords | Consciousness Correlated variability Directional variance Dynamical systems Pattern similarity |
| Key finding | Conscious perception involves transient stabilization of distributed cortical networks, with seen trials exhibiting less variability and greater stability than unseen trials. |
Abstract
According to recent evidence, stimulus-tuned neurons in the cerebral cortex exhibit reduced variability in firing rate across trials, after the onset of a stimulus. However, in order for a reduction in variability to be directly relevant to perception and behavior, it must be realized within trial--the pattern of activity must be relatively stable. Stability is characteristic of decision states in recurrent attractor networks, and its possible relevance to conscious perception has been suggested by theorists. However, it is difficult to measure on the within-trial time scales and broadly distributed spatial scales relevant to perception. We recorded simultaneous magneto- and electroencephalography (MEG and EEG) data while subjects observed threshold-level visual stimuli. Pattern-similarity analyses applied to the data from MEG gradiometers uncovered a pronounced decrease in variability across trials after stimulus onset, consistent with previous single-unit data. This was followed by a significant divergence in variability depending upon subjective report (seen/unseen), with seen trials exhibiting less variability. Applying the same analysis across time, within trial, we found that the latter effect coincided in time with a difference in the stability of the pattern of activity. Stability alone could be used to classify data from individual trials as "seen" or "unseen." The same metric applied to EEG data from patients with disorders of consciousness exposed to auditory stimuli diverged parametrically according to clinically diagnosed level of consciousness. Differences in signal strength could not account for these results. Conscious perception may involve the transient stabilization of distributed cortical networks, corresponding to a global brain-scale decision.