Distributed harmonic patterns of structure-function dependence orchestrate human consciousness
Andrea I. Luppi, Jakub Vohryzek, Morten L. Kringelbach, Pedro A. M. Mediano, Michael M Craig, R. Adapa, Robin Carhart‐Harris, Leor Roseman, Ioannis Pappas, Alexander R. D. Peattie, Anne E. Manktelow, Barbara J. Sahakian, Paola Finoia, Guy Williams, Judith Allanson, John D. Pickard, David Menon, Selen Atasoy, Emmanuel A. Stamatakis
bioRxiv (Cold Spring Harbor Laboratory) August 10, 2020 preprint DOI: 10.1101/2020.08.10.244459 via OpenAlex
Summary
AI-generated from the abstractConsciousness arises from how the brain's structural wiring shapes its dynamic activity. By decomposing resting-state fMRI data into harmonic modes of the human structural connectome, a generalizable signature of lost consciousness emerges—whether from anesthesia or brain injury—while a reversed signature characterizes psychedelic states induced by LSD or ketamine, reflecting decoupling of function from structure. This connectome harmonic approach discriminates between behaviorally indistinguishable brain-injured patients and tracks covert consciousness, linking neurobiology to conscious experience.
Study at a glance
| Characteristics | Observational study |
|---|---|
| Population | Humans with chronic disorders of consciousness and those under pharmacological perturbations (propofol, ketamine, LSD) |
| Interventions | Propofol Ketamine LSD |
| Keywords | Neuroscience Consciousness Human connectome project Wakefulness Psychology |
| Citations | 26 |
| Key finding | A connectome harmonic signature of lost consciousness generalizes across anesthesia and brain injury, while a reversed signature characterizes psychedelic-induced altered states. |
Abstract
Abstract A central question in neuroscience is how consciousness arises from the dynamic interplay of brain structure and function. Departing from the predominant location- centric view in neuroimaging, here we provide an alternative perspective on the neural signatures of human consciousness: one that is intrinsically centered on how the distributed network architecture of the human structural connectome shapes functional activation across scales. We decompose cortical dynamics of resting-state functional MRI into fundamental distributed patterns of structure- function association: the harmonic modes of the human structural connectome. We contrast wakefulness with a wide spectrum of states of consciousness, spanning chronic disorders of consciousness but also pharmacological perturbations of consciousness induced with the anaesthetic propofol and the psychoactive drugs ketamine and LSD. Decomposing this wide spectrum of states of consciousness in terms of “connectome harmonics” reveals a generalisable structure-function signature of loss of consciousness, whether due to anaesthesia or brain injury. A mirror-reverse of this harmonic signature characterises the altered state induced by LSD or ketamine, reflecting psychedelic-induced decoupling of brain function from structure. The topology and neuroanatomy of the human connectome are crucial for shaping the repertoire of connectome harmonics into a fine-tuned indicator of consciousness, correlating with physiological and subjective scores across datasets and capable of discriminating between behaviourally indistinguishable sub-categories of brain-injured patients, tracking the presence of covert consciousness. Overall, connectome harmonic decomposition identifies meaningful relationships between neurobiology, brain function, and conscious experience.