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Updated: Sep 28, 2025

Microstate and Omega Complexity Analyses of the Resting-state Electroencephalography
Published on: June 15, 2018
Abnormalities in resting-state EEG microstates are a vulnerability marker of migraine
Yansong Li1,2, Guoliang Chen3,4,5, Jing Lv6
1Reward, Competition and Social Neuroscience Lab, Department of Psychology, School of Social and Behavioral Sciences, Nanjing University, Nanjing, China.
Background:
Resting-state EEG microstates are thought to reflect brief activations of several interacting components of resting-state brain networks. Surprisingly, we still know little about the role of these microstates in migraine. In the present study, we attempted to address this issue by examining EEG microstates in patients with migraine without aura (MwoA) during the interictal period and comparing them with those of a group of healthy controls (HC).
Methods:
Resting-state EEG was recorded in 61 MwoA patients (50 females) and 66 HC (50 females). Microstate parameters were compared between the two groups. We computed four widely identified canonical microstate classes A-D.
Results:
Microstate classes B and D displayed higher time coverage and occurrence in the MwoA patient group than in the HC group, while microstate class C exhibited significantly lower time coverage and occurrence in the MwoA patient group. Meanwhile, the mean duration of microstate class C was significantly shorter in the MwoA patient group than in the HC group. Moreover, among the MwoA patient group, the duration of microstate class C correlated negatively with clinical measures of headache-related disability as assessed by the six-item Headache Impact Test (HIT-6). Finally, microstate syntax analysis showed significant differences in transition probabilities between the two groups, primarily involving microstate classes B, C, and D.
Conclusions:
By exploring EEG microstate characteristics at baseline we were able to explore the neurobiological mechanisms underlying altered cortical excitability and aberrant sensory, affective, and cognitive processing, thus deepening our understanding of migraine pathophysiology.
Insights
Migraine without aura patients show altered brain activity patterns during rest, specifically in electroencephalography (EEG) microstates. These changes in brain network dynamics correlate with headache disability, offering insights into migraine pathophysiology.
Area of Science:
- Neuroscience
- Brain Network Dynamics
- Electroencephalography (EEG)
Background:
- Resting-state EEG microstates represent brief functional brain network activations.
- The role of EEG microstates in migraine pathophysiology remains largely unexplored.
- This study investigates EEG microstates in migraine without aura (MwoA) patients during interictal periods.
Purpose of the Study:
- To examine and compare EEG microstate parameters between MwoA patients and healthy controls (HC).
- To investigate the relationship between EEG microstate characteristics and clinical measures of disability in MwoA.
Main Methods:
- Resting-state EEG data were collected from 61 MwoA patients and 66 HC.
- Four canonical microstate classes (A-D) were computed and analyzed.
- Microstate parameters, including time coverage, occurrence, and duration, were compared between groups.
Main Results:
- MwoA patients exhibited increased time coverage and occurrence of microstate classes B and D compared to HC.
- MwoA patients showed decreased time coverage, occurrence, and shorter mean duration of microstate class C.
- In MwoA patients, shorter duration of microstate class C correlated with higher headache-related disability (HIT-6).
Conclusions:
- Distinct EEG microstate alterations are present in MwoA patients during interictal periods.
- These findings suggest altered cortical excitability and aberrant processing in migraine.
- EEG microstate analysis provides insights into the neurobiological mechanisms of migraine pathophysiology.
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