
Contact & Links
steven.laureys@cervo.ulaval.ca
Mailing address
2601 Chemin de la Canardière Québec (Québec) G1J 2G3 Canada
Lab website
https://www.gigaconsciousness.uliege.be/cms/c_4212294/en/gigaconscious
Google scholar
https://scholar.google.com/citations?user=bDFJHx4AAAAJ&hl=en
ResearchGate
https://www.researchgate.net/profile/Steven-Laureys
Steven Laureys, MD, PhD
Leader of the Coma Science Group at the GIGA (ULg)
Canada Excellence Research Chair in Integrative Neuroscience for Sustainable Mental Health
Research Axis: Clinical and Cognitive Neuroscience
Professor at the CERVO research centre, neurologist and clinical professor at the Centre du Cerveau of the CHU of Liège, Director of Research at the FNRS, Steven Laureys headed, until early 2020, the Coma Science Group that he created in 2014 within the GIGA Consciousness centre at the University of Liège. Most of his research work is devoted to the study of alterations in consciousness in severely brain-damaged patients (coma, vegetative state/non-responsive arousal, minimally conscious state, locked-in syndrome), as well as during anaesthesia, sleep, meditation and in the hypnotic state.
Steven Laureys is the author of over 450 scientific articles, some of which have been published in the most prestigious journals, including Science, Lancet, PNAS and Nature Review Neuroscience. In 2005, he published a book entitled “The Boundaries of Consciousness” with Elsevier. His second book, The Neurology of Consciousness, was published in 2008.
In 2015, he wrote “Un si brillant cerveau – les états limites de conscience” (Editions Odile Jacob) and in 2019 “La méditation, c’est bon pour le cerveau” (Editions Odile Jacob), books aimed at the general public, both best-sellers.
Winner of numerous scientific awards, including the Francqui Prize (2017) – Belgium’s most prestigious scientific prize – and the Generet Prize (2019), Steven Laureys is undoubtedly one of the world’s leading specialists on the issue of altered states.
Publications
Pablo Núñez; Prejaas Tewarie; Víctor Rodríguez-González; Naji L N Alnagger; Glenn J M van der Lande; Marie M Vitello; Paolo Cardone; Aurore Thibaut; Laouen Belloli; Steven Laureys; Jacobo D Sitt; Jitka Annen; Olivia Gosseries
Altered electrophysiological meta-state dynamics in disorders of consciousness Journal Article
In: Neuroimage, vol. 323, pp. 121519, 2025, ISSN: 1095-9572.
@article{pmid41072637,
title = {Altered electrophysiological meta-state dynamics in disorders of consciousness},
author = {Pablo Núñez and Prejaas Tewarie and Víctor Rodríguez-González and Naji L N Alnagger and Glenn J M van der Lande and Marie M Vitello and Paolo Cardone and Aurore Thibaut and Laouen Belloli and Steven Laureys and Jacobo D Sitt and Jitka Annen and Olivia Gosseries},
doi = {10.1016/j.neuroimage.2025.121519},
issn = {1095-9572},
year = {2025},
date = {2025-12-01},
journal = {Neuroimage},
volume = {323},
pages = {121519},
abstract = {BACKGROUND: This multi-centric study aimed to explore differences in brain activity patterns in patients with disorders of consciousness (DoC), including unresponsive wakefulness syndrome (UWS) and minimally conscious state (MCS).nnMETHODS: Using high-density electroencephalographic (EEG) recordings from 368 DoC patients, 39 who emerged from MCS (eMCS), and 73 healthy controls, we examined instantaneous functional connectivity-based meta-states acting as attractors in a dynamical system, extracted by means of community detection algorithms and recurrence analysis. We analyzed data from two patient cohorts and included resting-state and auditory processing tasks in four frequency bands (delta, theta, alpha, beta) and from three perspectives, namely: (i) discrete activation of dominant states, (ii) a dynamical system composed of attractor states and (iii) the correlation and anticorrelation patterns of the active states.nnRESULTS: Findings revealed that while the overall structure of brain connectivity remained stable after injury, patients with DoC and those who emerged showed notable differences in the speed and consistency of how their brain states activated. Specifically, in higher frequencies, UWS patients exhibited faster, and less stable dynamics, shorter dwell times and decreased meta-state anticorrelation compared to those in MCS and eMCS. Moreover, a four-way combined learning classification analysis showed that the measures were able to distinguish the UWS and MCS subgroups.nnSIGNIFICANCE: These brain state dynamics could serve as valuable markers for assessing states of consciousness. Our results highlight the potential of using high-temporal resolution dynamic brain activity patterns to improve the understanding of altered consciousness and their application to clinical settings.},
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Prejaas K B Tewarie; Romesh Abeysuriya; Rajanikant Panda; Pablo Nùñez; Marie M Vitello; Glenn van der Lande; Olivia Gosseries; Aurore Thibaut; Steven Laureys; Gustavo Deco; Jitka Annen
Individual trajectories for recovery of neocortical activity in disorders of consciousness Journal Article
In: PLoS Comput Biol, vol. 21, no. 11, pp. e1013659, 2025, ISSN: 1553-7358.
@article{pmid41218082,
title = {Individual trajectories for recovery of neocortical activity in disorders of consciousness},
author = {Prejaas K B Tewarie and Romesh Abeysuriya and Rajanikant Panda and Pablo Nùñez and Marie M Vitello and Glenn van der Lande and Olivia Gosseries and Aurore Thibaut and Steven Laureys and Gustavo Deco and Jitka Annen},
doi = {10.1371/journal.pcbi.1013659},
issn = {1553-7358},
year = {2025},
date = {2025-11-01},
journal = {PLoS Comput Biol},
volume = {21},
number = {11},
pages = {e1013659},
abstract = {The evolution from disturbed brain activity to physiological brain rhythms can precede recovery in patients with disorders of consciousness (DoC). Accordingly, intriguing questions arise: What are the pathophysiological factors associated to disrupted brain rhythms in patients with DoC, and are there potential pathways for individual patients with DoC to return to normal brain rhythms? We addressed these questions at the individual subject level using biophysical simulations based on electroencephalography (EEG). The main findings are that unconscious patients exhibit a loss of excitatory corticothalamic synaptic strength. Synaptic plasticity in this excitatory corticothalamic circuitry facilitates the return of physiological brain rhythms, characterized by the reappearance of spectral peaks and flattening of the aperiodic (1/f) component of the power spectrum, in the selection of patients with DoC, particularly in those who are minimally conscious. The extent to which this occurred was correlated with cerebral glucose uptake. The current findings emphasize the importance of excitatory thalamocortical activity in reestablishing normal brain rhythms after brain injury and show that biophysical modelling of the corticothalamic circuitry could help select patients who might be potentially receptive to treatment and undergo plasticity.},
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Naji L N Alnagger; Paolo Cardone; Charlotte Martial; Yonatan Sanz Perl; Iván Mindlin; Jacobo D Sitt; Leor Roseman; Robin Carhart-Harris; David Nutt; Pablo Mallaroni; Natasha Mason; Johannes G Ramaekers; Vincent Bonhomme; Steven Laureys; Gustavo Deco; Olivia Gosseries; Pablo Núñez; Jitka Annen
A Virtual Clinical Trial of Psychedelics to Treat Patients With Disorders of Consciousness Journal Article
In: Adv Sci (Weinh), pp. e11780, 2025, ISSN: 2198-3844.
@article{pmid41261994,
title = {A Virtual Clinical Trial of Psychedelics to Treat Patients With Disorders of Consciousness},
author = {Naji L N Alnagger and Paolo Cardone and Charlotte Martial and Yonatan Sanz Perl and Iván Mindlin and Jacobo D Sitt and Leor Roseman and Robin Carhart-Harris and David Nutt and Pablo Mallaroni and Natasha Mason and Johannes G Ramaekers and Vincent Bonhomme and Steven Laureys and Gustavo Deco and Olivia Gosseries and Pablo Núñez and Jitka Annen},
doi = {10.1002/advs.202511780},
issn = {2198-3844},
year = {2025},
date = {2025-11-01},
journal = {Adv Sci (Weinh)},
pages = {e11780},
abstract = {Disorders of consciousness (DoC), including unresponsive wakefulness syndrome (UWS) and minimally conscious state (MCS), have limited treatment options and are characterized by low complexity of brain activity. Recent research suggests that psychedelic drugs, which enhance the complexity of brain activity, could offer promising therapies. Here, individualized whole-brain computational models are developed for patients with DoC, optimized with empirical functional magnetic resonance imaging data and diffusion-weighted imaging data, upon which the administration of lysergic acid diethylamide (LSD) and psilocybin is simulated. An in silico perturbation protocol is applied to assess brain dynamics, first distinguishing between different states of consciousness, including DoC, anesthesia, and the psychedelic state. Then, brain dynamics are assessed before and after a simulation of psychedelic drugs on patients with DoC. Findings indicated that the simulation of LSD and psilocybin shifted the brain activity of patients with DoC closer to criticality (the point at a phase transition between order and chaos), with a greater effect in patients in the MCS. In patients with UWS, the treatment response correlated with structural connectivity, while in patients in the MCS, it aligned with baseline functional connectivity. These results offer a computational foundation for using psychedelics in DoC treatment and highlight the potential future role of computational modeling in drug discovery and personalized medicine.},
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Haoran Zhang; Qianqian Ge; Xiao Liu; Yuanyuan Dang; Long Xu; Yutong Zhuang; Si Wu; Steven Laureys; Jianghong He; Shan Yu
A shared central thalamus mechanism underlying diverse recoveries in disorders of consciousness Journal Article
In: Nat Commun, vol. 16, no. 1, pp. 10400, 2025, ISSN: 2041-1723.
@article{pmid41285808,
title = {A shared central thalamus mechanism underlying diverse recoveries in disorders of consciousness},
author = {Haoran Zhang and Qianqian Ge and Xiao Liu and Yuanyuan Dang and Long Xu and Yutong Zhuang and Si Wu and Steven Laureys and Jianghong He and Shan Yu},
doi = {10.1038/s41467-025-65360-4},
issn = {2041-1723},
year = {2025},
date = {2025-11-01},
journal = {Nat Commun},
volume = {16},
number = {1},
pages = {10400},
abstract = {Disorders of consciousness (DoC) encompass a range of states characterized by prolonged altered awareness due to heterogeneous brain damage and are associated with highly diverse prognoses. However, the neural mechanisms underlying such diverse recoveries in DoC remain unclear. To address this issue, we analyzed direct recordings from the central thalamus (CeTh), a key hub in arousal regulation, in a series of 23 DoC patients receiving deep brain stimulation treatment (CeTh-DBS). We identified a core set of electrophysiological features of the CeTh, particularly those of the theta rhythm. These features could account for individual recovery outcomes across highly varied etiologies (trauma, brainstem hemorrhage, and anoxia), and across clinical baselines and patient ages. CeTh activities also identified two subgroups of patients with recovery potential, including those with poor initial clinical manifestations but who eventually exhibited functional recovery. A biophysical model further revealed the neurodynamics of the theta rhythm in the CeTh across different brain states correlating with varying consciousness levels. These findings uncover a shared CeTh mechanism underlying diverse recoveries in DoC.},
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Ke Cui; Caizheng Geng; Chunyan Yang; Weili Zhao; Haibo Di; Steven Laureys; Yinghe Xu; Gang Wu
2025, ISSN: 2223-4292.
@misc{pmid41081145,
title = {18F-fluorodeoxyglucose positron emission tomography/computed tomography as an adjunctive tool in the diagnosis of brain death/death by neurologic criteria (BD/DNC) with abnormal spinal reflexes: a series of case descriptions},
author = {Ke Cui and Caizheng Geng and Chunyan Yang and Weili Zhao and Haibo Di and Steven Laureys and Yinghe Xu and Gang Wu},
doi = {10.21037/qims-2025-1134},
issn = {2223-4292},
year = {2025},
date = {2025-10-01},
journal = {Quant Imaging Med Surg},
volume = {15},
number = {10},
pages = {10374--10383},
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pubstate = {published},
tppubtype = {misc}
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Marie Detroz; Steven Laureys; Audrey Maudoux
The Stuck Brain: Constrained Connectivity and Temporal Rigidity in Tinnitus Journal Article
In: Brain Connect, vol. 15, no. 7, pp. 278–279, 2025, ISSN: 2158-0022.
@article{pmid40857706,
title = {The Stuck Brain: Constrained Connectivity and Temporal Rigidity in Tinnitus},
author = {Marie Detroz and Steven Laureys and Audrey Maudoux},
doi = {10.1177/21580014251374571},
issn = {2158-0022},
year = {2025},
date = {2025-09-01},
journal = {Brain Connect},
volume = {15},
number = {7},
pages = {278--279},
keywords = {},
pubstate = {published},
tppubtype = {article}
}
Nantu He; Steven Laureys
From Thought to Therapy in Real Time: Advances in Communication, Neuromodulation, and Network Decoding Miscellaneous
2025, ISSN: 2158-0022.
@misc{pmid40960918,
title = {From Thought to Therapy in Real Time: Advances in Communication, Neuromodulation, and Network Decoding},
author = {Nantu He and Steven Laureys},
doi = {10.1177/21580014251378006},
issn = {2158-0022},
year = {2025},
date = {2025-09-01},
journal = {Brain Connect},
keywords = {},
pubstate = {published},
tppubtype = {misc}
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Alice Barra; Rodrigo Huerta-Gutierrez; Jitka Annen; Geraldine Martens; Steven Laureys; Roberto Llorens; Tobias Kurth; Aurore Thibaut
In: Neurotherapeutics, vol. 22, no. 4, pp. e00587, 2025, ISSN: 1878-7479.
@article{pmid40253244,
title = {Characterization of responders to transcranial direct current stimulation in disorders of consciousness: A retrospective study of 8 clinical trials},
author = {Alice Barra and Rodrigo Huerta-Gutierrez and Jitka Annen and Geraldine Martens and Steven Laureys and Roberto Llorens and Tobias Kurth and Aurore Thibaut},
doi = {10.1016/j.neurot.2025.e00587},
issn = {1878-7479},
year = {2025},
date = {2025-07-01},
journal = {Neurotherapeutics},
volume = {22},
number = {4},
pages = {e00587},
abstract = {The treatment for patients with disorders of consciousness challenges researchers and clinicians. The stimulation of the left dorsolateral prefrontal cortex with transcranial direct current stimulation (tDCS) may enhance behavioral responsiveness of a subset of patients in a minimally conscious state, while having limited effects in unresponsive patients. However, heterogeneity in responses raises questions about the effectiveness of tDCS. Our objective was to explore the characteristics of responders to tDCS based on previously published RCTs and investigate the heterogeneity of treatment effect to better direct future tDCS studies towards patient profiles that appear to be more responsive to the treatment. We explored clinical and demographical differences between responders (i.e., recovery of a new sign of consciousness after active stimulation) and non-responder and the predictors of treatment response with a LASSO logistic regression. We included 131 patients (44 women, 61 traumatic brain injury, 90 minimally conscious, mean age 46.13 years [SD = 16], median time since injury 12.84 months [IQR: 5.25-35.10]) of which 33 responded to tDCS. While 32 % of minimally conscious patients responded to tDCS (95%CI 0.24, 0.43), 10 % (95%CI 0.04, 0.25) of those unresponsive responded. The regression model, using diagnosis at baseline, Coma Recovery Scale-Revised Index at baseline, age, sex and time since injury correctly discriminated between tDCS responders and non-responders (area under the curve of 0.77). Our findings suggest that patients in minimally conscious state, with a better cognitive profile and longer TSI respond better to tDCS, making them better candidates for the treatment.},
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Xiyuan Lei; Anqi Wang; Kexu Zhang; Siyang Liu; Ying Zhao; Steven Laureys; Shanbao Tong; Haibo Di; Nantu Hu; Xiaoli Guo
Characterizing consciousness states: EEG microstate dynamics in patients with disorders of consciousness during naturalistic movie-viewing Journal Article
In: Med Biol Eng Comput, 2025, ISSN: 1741-0444.
@article{pmid40736881,
title = {Characterizing consciousness states: EEG microstate dynamics in patients with disorders of consciousness during naturalistic movie-viewing},
author = {Xiyuan Lei and Anqi Wang and Kexu Zhang and Siyang Liu and Ying Zhao and Steven Laureys and Shanbao Tong and Haibo Di and Nantu Hu and Xiaoli Guo},
doi = {10.1007/s11517-025-03415-w},
issn = {1741-0444},
year = {2025},
date = {2025-07-01},
journal = {Med Biol Eng Comput},
abstract = {Consciousness assessment in disorders of consciousness (DoC) patients remains clinically challenging. Dynamic brain activities responsive to sensory stimulations have been suggested to contain consciousness-related information. However, primary sensory processing can occur unconsciously, necessitating evaluation of residual higher-order cognitive functions for effective assessment. In this study, we introduced a movie-viewing paradigm incorporating a scrambled version to control for primary sensory processing and applied electroencephalography (EEG) microstate analysis to capture higher-order neural dynamics. By comparing 23 DoC patients with 23 healthy individuals and 12 conscious brain-injured patients, we found significant abnormalities in microstate D in DoC patients. Healthy individuals and conscious brain-injured patients showed enhanced D-related parameters during intact movie-viewing compared to the scrambled condition. Conversely, DoC patients displayed a significant decrease in Duration, Coverage, Occurrence, and Transition Probabilities of microstate D during intact movie-viewing. Additionally, K-nearest neighbors classifier showed that the differences in microstate features between the intact and scrambled movie-viewing yielded the best classification outcome (AUC = 0.83), in which microstate D parameters serve as the most important features. Our results suggested that EEG microstates during naturalistic movie-viewing, especially microstate D, have the potential to serve as a novel, objective indicator for characterizing and diagnosing the state of consciousness.},
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pubstate = {published},
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Prejaas K B Tewarie; Steven Laureys; Rikkert Hindriks
Revisiting the Multilayer Network Framework for Electrophysiological Networks Journal Article
In: Brain Connect, vol. 15, no. 5, pp. 189–194, 2025, ISSN: 2158-0022.
@article{pmid40434895,
title = {Revisiting the Multilayer Network Framework for Electrophysiological Networks},
author = {Prejaas K B Tewarie and Steven Laureys and Rikkert Hindriks},
doi = {10.1089/brain.2025.0010},
issn = {2158-0022},
year = {2025},
date = {2025-06-01},
journal = {Brain Connect},
volume = {15},
number = {5},
pages = {189--194},
abstract = { The multilayer network framework has emerged as an innovative approach for analyzing electrophysiological networks, providing insights into complex neuronal interactions by integrating connectivity across different frequency bands in electroencephalography (EEG) and magnetoencephalography (MEG) data. Traditionally, multilayer networks have treated canonical frequency bands (e.g., delta, theta, alpha, beta, gamma) as distinct layers. Recent findings could raise potential concerns regarding this approach, emphasizing the need to incorporate the distinction between periodic (oscillatory) and aperiodic (broadband) signal components. Aperiodic signals may reflect excitation-inhibition balance and scale-free dynamics, while periodic signals capture oscillatory rhythms, both contributing uniquely to brain network interactions. A multilayer network framework in the current context could be applicable in the case of genuine coupling between these components, termed "aperiodic-to-periodic coupling." This necessitates novel connectivity metrics and analytical methods that can handle broadband data. Furthermore, challenges remain in decomposing these components in the time domain and developing robust metrics for broadband connectivity that account for signal leakage. Addressing these issues will enhance multilayer frameworks, enabling better insights into brain network integrity, cognitive dysfunction, and neurological conditions.},
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News

Dr David Cohen, featured speaker of the Tête-à-tête conference presented by the CERVO Foundation
Join us for an exceptional evening in the Tête-à-Tête series, on Tuesday November 12 at 7pm, with doors opening at 6:30pm. We’ll be honored to welcome Dr. David Cohen, distinguished Professor at Sorbonne University and Head of Child and Adolescent Psychiatry at the Pitié-Salpêtrière Hospital in Paris, as our featured speaker.This unique lecture will highlight the fascinating link between art […]

Steven Laureys appointed Editor-in-Chief of Brain Connectivity journal
CERVO researcher Steven Laureys has been appointed Editor-in-Chief of the journal Brain Connectivity. Brain Connectivity provides authoritative, peer-reviewed, and original investigations in the areas of neuroscience, neurology, physics, biophysics, computer science, neuroinformatics, developmental biology, genetics, molecular biology, psychiatry, pharmacology, anesthesiology, cell biology, and brain anatomy relevant to the field of brain connectivity. The journal delivers groundbreaking research on all aspects of […]

Public announcement of the new Canada Excellence Research Chair in Neuroplasticity
Stimulating the brain’s ability to reconfigure itself and modifying lifestyle for lasting brain health. How can stimulating neural activity, practicing meditation, improving sleep quality or taking part in physical activity transform the brain and lead to improved brain health and well-being? This is one of the key questions to be answered by the new Canada Excellence Research Chair in Neuroplasticity […]

Steven Laureys obtains a Canada Excellence Research Chair in Neuroscience and Sustainable Mental Health
The CERVO Brain Research Centre is proud to announce that Dr. Steven Laureys has just been awarded a prestigious Canada Excellence Research Chair in Neuroscience and Sustainable Mental Health. Dr. Laureys is a neurologist, researcher, author and lecturer with an international reputation for his research into human consciousness. With his team, he uses the latest techniques in brain imaging to […]