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Modulation of the spontaneous hemodynamic response function across levels of consciousness.

Guo-Rong Wu, Carol Di Perri, Vanessa Charland-Verville, Charlotte Martial, Manon Carrière, Audrey Vanhaudenhuyse, Steven Laureys, Daniele Marinazzo

Neuroimage October 15, 2019 DOI: 10.1016/j.neuroimage.2019.07.011 (opens in new tab) via PubMed

Summary

AI-generated from the abstract

Changes in the brain's hemodynamic response in the precuneus and posterior cingulate are a common principle underlying loss of consciousness under Propofol anesthesia and in unresponsive wakefulness syndrome. The thalamus is less obviously modulated by Propofol compared with frontoparietal regions, but patients with unresponsive wakefulness syndrome show a significant increase in spontaneous thalamic hemodynamic response compared with healthy controls. The results indicate that anesthesia- or pathology-induced neurovascular coupling can be tracked by modulated spontaneous hemodynamic response derived from resting state fMRI.

Study at a glance

Characteristics Observational study Peer reviewed
Population Patients in unresponsive wakefulness syndrome and healthy controls
Intervention Propofol anesthesia
Key finding Changes in the hemodynamic response in precuneus and posterior cingulate are a common principle underlying loss of consciousness in both Propofol anesthesia and unresponsive wakefulness syndrome.

Abstract

Functional imaging research has already contributed with several results to the study of neural correlates of consciousness. Apart from task-related activation derived in fMRI, PET based glucose metabolism rate or cerebral blood flow account for a considerable proportion of the study of brain activity under different levels of consciousness. Resting state functional connectivity MRI is playing a crucial role to explore the consciousness related functional integration, successfully complementing PET, another widely used neuroimaging technique. Here, spontaneous hemodynamic response is introduced to characterize resting state brain activity giving information on the local metabolism (neurovascular coupling), and useful to improve the time-resolved activity and connectivity measures based on BOLD fMRI. This voxel-wise measure is then used to investigate the loss of consciousness under Propofol anesthesia and unresponsive wakefulness syndrome. Changes in the hemodynamic response in precuneus and posterior cingulate are found to be a common principle underlying loss of consciousness in both conditions. The thalamus appears to be less obviously modulated by Propofol, compared with frontoparietal regions. However, a significant increase in spontaneous thalamic hemodynamic response was found in patients in unresponsive wakefulness syndrome compared with healthy controls. Our results ultimately show that anesthesia- or pathology-induced neurovascular coupling could be tracked by modulated spontaneous hemodynamic response derived from resting state fMRI.

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