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 abstractConsciousness 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.