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3D-Neuronavigation In Vivo Through a Patient's Brain During a Spontaneous Migraine Headache
Published on: June 2, 2014
Reduced brain entropy in migraine with partial restoration during attacks: A resting-state fMRI study
Majid Saberi1, Dajung J Kim2, Xiao-Su Hu1
1Headache and Orofacial Pain Effort (H.O.P.E.), Biologic and Materials Science & Prosthodontics, University of Michigan School of Dentistry, Ann Arbor, MI, USA.
Abstract:
Migraine is a prevalent and disabling neurological disorder, characterized by impaired regulation of migraine burden, sensory processing, and cognitive-emotional states. Brain entropy quantifies the complexity of neural dynamics, where reduced entropy may reflect diminished neural adaptability, but its assessment with fMRI in migraine remains limited. Here, we examined alterations in brain entropy and their associations with clinical burden, migraine phase, and symptomatology. Resting-state fMRI data were acquired from adults with episodic migraine, chronic migraine, and healthy controls. Following standard preprocessing, voxel-wise sample entropy was computed, and group differences were assessed using ANCOVA with age and sex as covariates. Associations with clinical burden and symptom measures were examined within affected regions. In chronic migraine, attack timing-related changes in entropy were further explored, and the Largest Lyapunov Exponent (LLE) was estimated to characterize chaotic dynamics underlying attack-related complexity changes. Migraine patients showed reduced entropy in visual, dorsal attention, and default mode network regions compared to controls, most pronounced in chronic migraine. Lower entropy correlated with greater headache frequency and longer illness duration. In chronic migraine, entropy relatively increased during attacks in multisensory integration regions and was associated with positive and elevated LLEs, indicating partially restored complexity with weakly chaotic dynamics. Patients experiencing phonophobia and nausea also exhibited increased entropy in multisensory integration and default mode network regions. Our findings demonstrate widespread reductions in brain entropy in migraine, reflecting impaired neural adaptability, whereas attacks may transiently restore complexity partially through weakly chaotic dynamics. These results advance understanding of migraine pathophysiology and highlight potential targets for therapeutic intervention.
Insights
Migraine patients exhibit reduced brain entropy, indicating impaired neural adaptability. During attacks, brain complexity may partially restore through weakly chaotic dynamics, offering insights into migraine pathophysiology.
Area of Science:
- Neuroscience
- Neurology
- Medical Imaging
Background:
- Migraine is a common neurological disorder impacting neural regulation.
- Brain entropy, a measure of neural complexity, is under-researched in migraine using fMRI.
- Reduced entropy may signify decreased neural adaptability in neurological conditions.
Purpose of the Study:
- To investigate brain entropy alterations in episodic and chronic migraine.
- To correlate brain entropy with clinical migraine burden and symptoms.
- To explore dynamic changes in brain entropy during migraine attacks.
Main Methods:
- Resting-state fMRI data from migraine patients and controls.
- Voxel-wise sample entropy calculation and group comparisons.
- Analysis of entropy associations with clinical data and Largest Lyapunov Exponent (LLE).
Main Results:
- Migraine patients showed reduced brain entropy in key network regions, especially in chronic migraine.
- Lower entropy correlated with higher headache frequency and longer illness duration.
- During attacks, entropy increased in specific regions, linked to weakly chaotic dynamics (positive LLE).
Conclusions:
- Migraine is associated with widespread reductions in brain entropy, suggesting impaired neural adaptability.
- Migraine attacks may involve transient, partially restored neural complexity via chaotic dynamics.
- Findings offer insights into migraine pathophysiology and potential therapeutic targets.

