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Determination of Vascular Dementia Brain in Distinct Frequency Bands with Whole Brain Functional Connectivity Patterns

Overview of attention for article published in PLOS ONE, January 2013
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Title
Determination of Vascular Dementia Brain in Distinct Frequency Bands with Whole Brain Functional Connectivity Patterns
Published in
PLOS ONE, January 2013
DOI 10.1371/journal.pone.0054512
Pubmed ID
Authors

Delong Zhang, Bo Liu, Jun Chen, Xiaoling Peng, Xian Liu, Yuanyuan Fan, Ming Liu, Ruiwang Huang

Abstract

Recent studies have shown that multivariate pattern analysis (MVPA) can be useful for distinguishing brain disorders into categories. Such analyses can substantially enrich and facilitate clinical diagnoses. Using MPVA methods, whole brain functional networks, especially those derived using different frequency windows, can be applied to detect brain states. We constructed whole brain functional networks for groups of vascular dementia (VaD) patients and controls using resting state BOLD-fMRI (rsfMRI) data from three frequency bands - slow-5 (0.01 ≈ 0.027 Hz), slow-4 (0.027∼0.073 Hz), and whole-band (0.01 ≈ 0.073 Hz). Then we used the support vector machine (SVM), a type of MVPA classifier, to determine the patterns of functional connectivity. Our results showed that the brain functional networks derived from rsfMRI data (19 VaD patients and 20 controls) in these three frequency bands appear to reflect neurobiological changes in VaD patients. Such differences could be used to differentiate the brain states of VaD patients from those of healthy individuals. We also found that the functional connectivity patterns of the human brain in the three frequency bands differed, as did their ability to differentiate brain states. Specifically, the ability of the functional connectivity pattern to differentiate VaD brains from healthy ones was more efficient in the slow-5 (0.01 ≈ 0.027 Hz) band than in the other two frequency bands. Our findings suggest that the MVPA approach could be used to detect abnormalities in the functional connectivity of VaD patients in distinct frequency bands. Identifying such abnormalities may contribute to our understanding of the pathogenesis of VaD.

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Geographical breakdown

Country Count As %
United States 3 4%
United Kingdom 2 3%
Turkey 2 3%
Finland 1 1%
Unknown 71 90%

Demographic breakdown

Readers by professional status Count As %
Researcher 20 25%
Student > Ph. D. Student 15 19%
Student > Master 13 16%
Student > Bachelor 5 6%
Professor > Associate Professor 5 6%
Other 9 11%
Unknown 12 15%
Readers by discipline Count As %
Medicine and Dentistry 14 18%
Neuroscience 13 16%
Engineering 10 13%
Psychology 10 13%
Physics and Astronomy 4 5%
Other 11 14%
Unknown 17 22%