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PNAS nexus

ISSN 2752-6542

5 papers in the library · 26 citations · publishing 2024-2026

Papers

Predicting attentional focus: Heartbeat-evoked responses and brain dynamics during interoceptive and exteroceptive processing.

PNAS nexus December 1, 2024 Emilia Fló, Laouen Belloli, Álvaro Cabana et al. 10 citations

Directing attention toward the body's internal signals (interoception) versus external sounds (exteroception) produces distinct brain activity patterns. Exteroceptive attention flattened overall brain wave power, while interoceptive attention reduced brain signal complexity, increased frontal connectivity and theta oscillations, and modulated the heartbeat-evoked potential (HEP). Classifiers using HEP features correctly identified the attentional state in 17 of 20 healthy participants; power spectral density features classified all 20. In five brain-injured patients, one with unresponsive wakefulness syndrome and one with locked-in syndrome showed willful modulation of the HEP, suggesting they could follow commands. These findings highlight how attention shapes sensory processing and may aid diagnosis in disorders of consciousness.

Prediction of hallucinogen persisting perception disorder and thought disturbance symptoms following psychedelic use.

PNAS nexus April 1, 2025 Katie Zhou, David de Wied, Robin L Carhart-Harris et al. 9 citations

Delusional ideation decreased one month after a planned psychedelic experience, while magical thinking showed no change. Over 30% of participants reported hallucinogen persisting perception disorder (HPPD)-type effects at four weeks, though fewer than 1% found them distressing. Younger age, female gender, a history of psychiatric diagnosis, and baseline trait absorption predicted HPPD-like effects. Lifetime psychedelic use at baseline correlated positively with both magical thinking and delusional ideation, suggesting these traits may correlate with psychedelic use rather than being caused by it.

Identifying content-invariant neural signatures of perceptual vividness.

PNAS nexus February 1, 2024 Benjy Barnett, Lau M Andersen, Stephen M Fleming et al. 7 citations

Perceptual vividness—the intensity of conscious experience—varies across different experiences, but how the brain registers this variation is unclear. In other psychological domains like number or reward, magnitude is represented independently of sensory features. Reanalyzing existing magnetoencephalography and functional MRI data from two studies that quantified vividness via subjective awareness and visibility ratings, evidence emerged for content-invariant neural signatures of vividness distributed across visual, parietal, and frontal cortices. These findings suggest that neural correlates of subjective vividness may share properties with magnitude codes in other cognitive domains.

Neural mechanisms of awareness of action.

PNAS nexus July 1, 2026 David S Jin, Oumayma Agdali, Taruna Yadav et al.

Awareness of action (AoA)—the conscious awareness of one's own actions—is crucial for daily life, yet its neural basis is poorly understood. By developing a game where participants repeatedly made nearly identical moves while distracted, then reported awareness or unawareness of those moves, the authors compared neural activity between aware and unaware actions. On short timescales, aware actions showed larger neurophysiological signals both before and after movement, including volitional and perceptual event-related potentials, frontal midline theta, alpha/beta desynchronization, and increased blink rates. On longer timescales, a novel positive event-related potential preceded only unaware moves, and behavioral and pupillometric evidence indicated decreased attention and arousal concurrent with AoA loss. Three synergistic neural mechanisms were identified: long-term increases in arousal/attentional state, increased motor volitional signals, and increased sensory perceptual signals.

Atlas of intracranial electroencephalography complexity across cortical regions and global states of consciousness in the human brain.

PNAS nexus March 1, 2026 Lina Jeantin, Pierre Bourdillon, Marc Guenot et al.

Signal complexity in intracranial electroencephalography (iEEG) recordings from healthy brain tissue decreases with reduced consciousness, being highest during wakefulness and REM sleep and lowest under propofol anesthesia. Complexity is more variable during N2 and N3 sleep stages, and frontoparietal regions show the highest complexity during conscious states. Epileptic cortex exhibits lower complexity than healthy cortex during wake and REM sleep. A random forest classifier reliably classified sleep stages using complexity markers. These normative data support using iEEG signal complexity as a marker of physiological consciousness, cortical integrity, and sleep-stage detection.