DocumentCode
18295
Title
Enhanced Effective Connectivity in Mild Occipital Stroke Patients With Hemianopia
Author
Xiaoli Guo ; Zheng Jin ; Xinyang Feng ; Shanbao Tong
Author_Institution
Sch. of Biomed. Eng., Shanghai Jiao Tong Univ., Shanghai, China
Volume
22
Issue
6
fYear
2014
fDate
Nov. 2014
Firstpage
1210
Lastpage
1217
Abstract
Plasticity-based spontaneous recovery and rehabilitation intervention of stroke-induced hemianopia have drawn great attention in recent years. However, the underlying neural mechanism remains unknown. This study aims to investigate brain network disruption and reorganization in hemianopia patients due to mild occipital stroke. Resting-state networks were constructed from 12 hemianopia patients with right occipital infarct by partial directed coherence analysis of multi-channel electroencephalograms. Compared with control subjects, the patients presented enhanced connectivity owing to newly formed connections. Compensational connections mostly originated from the peri-infarct area and targeted contralesional frontal, central, and parietal cortices. These new ipsilesional-to-contralesional inter-hemispheric connections coordinately presented significant correlation with the extent of vision loss. The enhancement of connectivity might be the neural substrate for brain plasticity in stroke-induced hemianopia and may shed light on plasticity-based recovery or rehabilitation.
Keywords
bioelectric potentials; diseases; electroencephalography; neurophysiology; patient rehabilitation; vision defects; brain connectivity enhancement; brain network disruption; brain network reorganization; brain plasticity-based rehabilitation; brain plasticity-based spontaneous recovery; contralesional central cortices; contralesional frontal cortices; contralesional parietal cortices; ipsilesional-to-contralesional inter-hemispheric connections; mild occipital stroke patients; multichannel electroencephalograms; neural mechanism; neural substrate; resting-state networks; stroke-induced hemianopia; vision loss; Electroencephalography; Neuroplasticity; Patient rehabilitation; Hemianopia; enhanced connectivity; mild occipital stroke; newly formed connections; resting-state networks;
fLanguage
English
Journal_Title
Neural Systems and Rehabilitation Engineering, IEEE Transactions on
Publisher
ieee
ISSN
1534-4320
Type
jour
DOI
10.1109/TNSRE.2014.2325601
Filename
6819828
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