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Updated: Jul 1, 2025

Application of Granger Causality Analysis of the Directed Functional Connection in Alzheimer's Disease and Mild Cognitive Impairment
Published on: August 7, 2017
Changes in Community Structure of Brain Dynamic Functional Connectivity States in Mild Cognitive Impairment
Hongwei Wang1, Zhihao Zhu2, Hui Bi1
1School of Computer Science and Artificial Intelligence, Aliyun School of Big Data, School of Software, Changzhou University, Changzhou, Jiangsu 213164, China.
Abstract:
Recent researches have noted many changes of short-term dynamic modalities in mild cognitive impairment (MCI) patients' brain functional networks. In this study, the dynamic functional brain networks of 82 MCI patients and 85 individuals in the normal control (NC) group were constructed using the sliding window method and Pearson correlation. The window size was determined using single-scale time-dependent (SSTD) method. Subsequently, k-means was applied to cluster all window samples, identifying three dynamic functional connectivity (DFC) states. Collective sparse symmetric non-negative matrix factorization (cssNMF) was then used to perform community detection on these states and quantify differences in brain regions. Finally, metrics such as within-community connectivity strength, community strength, and node diversity were calculated for further analysis. The results indicated high similarity between the two groups in state 2, with no significant differences in optimal community quantity and functional segregation (p < 0.05). However, for state 1 and state 3, the optimal community quantity was smaller in MCI patients compared to the NC group. In state 1, MCI patients had lower within-community connectivity strength and overall strength than the NC group, whereas state 3 showed results opposite to state 1. Brain regions with statistical difference included MFG.L, ORBinf.R, STG.R, IFGtriang.L, CUN.L, CUN.R, LING.R, SOG.L, and PCUN.R. This study on DFC states explores changes in the brain functional networks of patients with MCI from the perspective of alterations in the community structures of DFC states. The findings could provide new insights into the pathological changes in the brains of MCI patients.
Insights
Researchers studied dynamic functional brain networks in mild cognitive impairment (MCI) patients. MCI patients showed altered community structures in brain networks, suggesting new insights into MCI pathology.
Area of Science:
- Neuroscience
- Cognitive Science
- Medical Imaging
Background:
- Mild cognitive impairment (MCI) is associated with changes in brain functional networks.
- Understanding these network alterations is crucial for identifying MCI pathology.
Purpose of the Study:
- To investigate dynamic functional connectivity (DFC) states in MCI patients compared to normal controls (NC).
- To analyze alterations in community structures within DFC states in MCI.
Main Methods:
- Constructed dynamic functional brain networks using sliding window and Pearson correlation.
- Applied k-means clustering to identify DFC states and cssNMF for community detection.
- Calculated within-community connectivity, community strength, and node diversity.
Main Results:
- MCI patients had fewer optimal communities in DFC states 1 and 3 compared to NC.
- State 1 showed reduced connectivity strength in MCI patients.
- State 3 exhibited increased connectivity strength in MCI patients, with significant differences in regions like MFG.L and CUN.R.
Conclusions:
- MCI is characterized by altered community structures in dynamic functional brain networks.
- These findings offer novel perspectives on the neuropathological changes in MCI.
- The study highlights the potential of DFC state analysis for understanding MCI progression.
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