Skip to content

Disrupted hierarchical organization in disorders of consciousness revealed by fluctuation-dissipation deviations

Marian Martínez-Marín, Jakub Vohryzek, Anira Escrichs, Dragana Manasova, Jacobo Sitt, Morten L. Kringelbach, Yonatan Sanz Perl, Gustavo Deco

bioRxiv (Cold Spring Harbor Laboratory) October 3, 2025 preprint DOI: 10.1101/2025.10.02.679992 via OpenAlex

Summary

AI-generated from the abstract

Consciousness levels after coma can be assessed by measuring how far the brain's dynamics are from equilibrium. Using fMRI data and individualized whole-brain models, researchers found that patients with disorders of consciousness—those in a minimally conscious state or unresponsive wakefulness syndrome—show brain activity closer to equilibrium than healthy controls, with the shift increasing as consciousness decreases. Disruptions in hierarchical drive were identified in default-mode network regions and subcortical hubs like the thalamus. Recovery of near-control hierarchy in the visual network distinguished minimally conscious from unresponsive patients, while limbic areas showed similar abnormalities in both groups. Deviation from the fluctuation-dissipation theorem offers a model-based biomarker for clinical stratification.

Study at a glance

Characteristics Observational cohort
Population Patients in minimally conscious state or unresponsive wakefulness syndrome and healthy controls
Keywords Hierarchy Consciousness Wakefulness Persistent vegetative state Minimally conscious state
Citations 1
Key finding Brain dynamics in disorders of consciousness are closer to equilibrium than in controls, with stepwise decreases aligning with lower consciousness levels.

Abstract

Abstract Evaluating consciousness levels after coma remains clinically challenging, and probing the brain’s functional hierarchy offers model-based biomarkers of brain states. We characterize the hierarchy loss in disorders of consciousness (DoC) via departures from non-equilibrium dynamics. Irreversible, directed interactions are indexed by deviation from the fluctuation– dissipation theorem (FDT), computed from individualized whole-brain models fit to fMRI from controls and patients in minimally conscious state (MCS) or unresponsive wakefulness syndrome (UWS). Global and resting-state network dynamics in DoC were closer to equilibrium than in controls, decreasing stepwise with decreasing levels of consciousness. Mapping site-specific hierarchical drive over the system revealed disruptions within default-mode network components (e.g., medial and dorsolateral superior frontal gyrus) and subcortical hubs (e.g., thalamus, pallidum and putamen) differentiating between all groups. Recovery of near-control hierarchy in the visual network differentiated MCS from UWS, whereas multiple limbic areas showed similar abnormalities across both DoC groups. Together, these results identify non-equilibrium dynamics as a signature of conscious capacity and stablish FDT deviation as a principled, model-based hierarchy measure that can be operationalised for clinical stratification and monitoring, opening avenues for targeted in silico intervention planing.

Comments

No comments yet.

Log in to comment