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Ellen Janke

5 papers in the library · 320 citations · publishing 2018-2023

Papers

Anterior insula regulates brain network transitions that gate conscious access

Cell Reports May 1, 2021 Zirui Huang, Vijay Tarnal, Phillip E. Vlisides et al. 119 citations

Conscious access to sensory information is likely gated at an intermediate site between primary sensory and transmodal association cortices, with the anterior insular cortex (AIC) playing a key role. Functional neuroimaging using a volitional mental imagery task in healthy volunteers, with propofol titrated to loss of behavioral responsiveness, showed that AIC dysfunction is associated with impaired transitions between default-mode and dorsal attention networks. Candidate subcortical regions such as the thalamus and basal forebrain did not show this association. In awake participants, pre-stimulus AIC activity near perceptual threshold predicted conscious access. These findings support the hypothesis that AIC regulates brain network transitions that gate conscious access.

Subanaesthetic ketamine and altered states of consciousness in humans

British Journal of Anaesthesia April 13, 2018 Phillip E. Vlisides, Tarik Bel‐bahar, Amanda Nelson et al. 117 citations

Subanaesthetic doses of ketamine produce altered states of consciousness dominated by dissociative experiences such as disembodiment and ego transcendence, along with sensory disturbances. These subjective effects occur alongside a broad decrease in low-frequency brain electrical activity, with the largest reductions in alpha power (8–12 Hz) in parietal and occipital regions. Specific decreases in alpha power were identified in the precuneus and temporal-parietal junction, brain areas involved in multisensory integration, body representation, and consciousness. The findings suggest that modulation of these temporal-parietal loci may be a candidate mechanism for ketamine's psychoactive effects.

Classical and non-classical psychedelic drugs induce common network changes in human cortex.

NeuroImage June 1, 2023 Rui Dai, Tony E Larkin, Zirui Huang et al. 49 citations

Three different psychedelics—nitrous oxide, ketamine, and lysergic acid diethylamide—produce a common pattern of brain network changes despite having distinct molecular mechanisms and delivery methods. Each drug reduced connectivity within brain networks and enhanced connectivity between networks. Specifically, all three increased connections between the right temporoparietal junction and bilateral intraparietal sulcus, and between the precuneus and left intraparietal sulcus. These regions lie within the posterior cortical "hot zone," an area thought to mediate the qualitative aspects of experience. The findings identify a biologically plausible candidate for the subjective effects of both classical and non-classical psychedelics.

Brain network motifs are markers of loss and recovery of consciousness

Scientific Reports February 16, 2021 Catherine Duclos, Danielle Nadin, Yacine Mahdid et al. 28 citations

Three-node network motifs—recurring patterns of connections—reorganize in the brain during anesthetic-induced unconsciousness and recovery. In nine healthy volunteers undergoing a 3-hour anesthesia protocol, electroencephalography (EEG) recordings in the alpha band (8–13 Hz) showed that two specific motifs (motifs 1 and 5) changed their topology significantly between responsive and unresponsive states. Motif 1 consisted of long-range chain-like connections, while motif 5 comprised short-range loop-like connections. The topological reorganization of motif 5 preceded the return of responsiveness, and motif 1 accompanied it, suggesting these motifs may help reveal neural correlates of consciousness.

Psychedelic concentrations of nitrous oxide reduce functional differentiation in frontoparietal and somatomotor cortical networks.

Commun Biol December 19, 2023 Rui Dai, Zirui Huang, Tony E. Larkin et al. 7 citations

At concentrations that produce psychedelic effects, nitrous oxide reduces the functional differentiation—the distinctness of activity patterns—within frontoparietal and somatomotor cortical networks. This suggests that the gas alters brain network organization, potentially contributing to its consciousness-altering properties. The finding points to a neural mechanism underlying the non-ordinary state induced by nitrous oxide, involving reduced specialization of key brain regions.