Proceedings of the National Academy of Sciences of the United States of America
July 23, 2021
L. R. Spindler, A. Luppi, R. Adapa et al.
A network of brain regions called the default mode network breaks down during anesthesia and after brain damage causing disorders of consciousness. The neurochemical reasons for this breakdown were unclear. Using functional MRI, researchers found that the ventral tegmental area, a dopamine-producing brainstem region, disconnects from key default mode network nodes (precuneus and posterior cingulate) during both propofol sedation and disorders of consciousness. Stronger connectivity between the ventral tegmental area and these nodes was associated with a more awake-like configuration of the default mode network. In patients with disorders of consciousness who later improved behaviorally, this connectivity increased toward healthy levels. In a separate group of traumatic brain injury patients, the drug methylphenidate significantly strengthened this connection. The findings suggest that dopamine modulation may be central to maintaining consciousness.
PLoS ONE
February 13, 2020
Thomas F. Varley, Michael M. Craig, R. Adapa et al.
Fractal dimension of brain activity—a measure of complexity beyond simple randomness—is lower in patients with disorders of consciousness than in healthy volunteers. Using fMRI data, fractal dimension was computed for cortical functional connectivity networks, adjacency matrices, and BOLD time-series. Healthy volunteers (n=15) had the highest fractal dimensions, followed by patients in a minimally conscious state (n=10), and patients in a vegetative state (n=8). Decreases in fractal dimension correlated with decreasing level of consciousness regardless of injury mechanism. The findings support the hypothesis that consciousness is associated with brain complexity and that fractal structures may indicate proximity to a critical point between low- and high-entropy states.
Nature Communications
October 10, 2019
A. Luppi, Michael M. Craig, I. Pappas et al.
Consciousness relies on spatio-temporal interactions between brain integration and functional diversity. Combining graph theory and dynamic functional connectivity, resting-state fMRI data from awake volunteers, propofol-anaesthetised volunteers, and patients with disorders of consciousness showed that cortical networks are especially affected during loss of consciousness in temporal states of high integration, exhibiting reduced functional diversity and compromised informational capacity, while thalamo-cortical functional disconnections emerge during states of higher segregation. Posterior regions of the brain's default mode network show reductions in both functional diversity and integration during unconsciousness. These overlapping reductions in diversity and integration may represent a generalisable biomarker of loss of consciousness.
Pain
January 1, 2013
Michael C. Lee, M. Ploner, K. Wiech et al.
Delta-9-tetrahydrocannabinol (THC), the psychoactive component of cannabis, reduces the unpleasantness but not the intensity of ongoing pain and hyperalgesia in healthy volunteers. Using functional magnetic resonance imaging, the study found that THC diminished activity in the anterior mid cingulate cortex during hyperalgesia. The reduction in unpleasantness correlated with right amygdala activity, and THC reduced functional connectivity between the amygdala and primary sensorimotor areas during ongoing pain. This dissociation suggests that THC targets the affective qualities of pain through frontal-limbic brain mechanisms, with amygdala activity contributing to individual differences in cannabinoid analgesia.