TY - JOUR
T1 - Largi-scale Brain Network Analysis of High Altitude Hypoxia
AU - Qian, Liu
AU - Jiewei, Chai
AU - Zeze, Fan
AU - Jiongyu, Huo
AU - Rong, Yao
AU - Usman, Ali
AU - Laffu, Zhang
AU - Zhipeng, Wang
AU - Xin, Wei
AU - Haffang, Li
N1 - Publisher Copyright:
(C) 1994-2020 China Academic Journal Electronic Publishing House. All rights reserved.
PY - 2020
Y1 - 2020
N2 - In view of the limitations of current processing of altitude data, i.e., extracting simple eigenvalues such as rhythm and energy values of electroencephalogram (EEG) signals, we considered the brain as an interconnected network, combined rhythm and energy with largbscale brain network, and explored the brain damage caused by hypoxia from a new perspective. Relevant research was conducted on residents who have lived at alttudes of 400, 2890, 3600 and 4500 m for two years. The scalp energy was estmated on the basis of the resting EEG sgnal, the network-based source localization technology was used to obtain the cortical current density under seven rhythms, and the energy values of the eight large-scale brain networks were obtained according to the area covered by each network. The one-way analysis of variance was performed on the energy of large-scale brain networks at different altitudes. The experimental results show that the large-scale brain network exhibts significant difference between different altitude and the brain network energy of deep structure in 4 500 m is significantly reduced under θ, α1, β1 and β2 rhythms. The brain network energy of visual network and iimbic under the α1 and β2 rhythms, and the default network under the α1 rhythm are all characterzed by a significant increase in 3600 m and a significant decrease in 4500 m. In addition, the energy value mcreases with the increase of altitude, but the energy value at the highest altitude is the lowest, so it is speculated that there exists a threshold of the alttude nfluence on brain functon.
AB - In view of the limitations of current processing of altitude data, i.e., extracting simple eigenvalues such as rhythm and energy values of electroencephalogram (EEG) signals, we considered the brain as an interconnected network, combined rhythm and energy with largbscale brain network, and explored the brain damage caused by hypoxia from a new perspective. Relevant research was conducted on residents who have lived at alttudes of 400, 2890, 3600 and 4500 m for two years. The scalp energy was estmated on the basis of the resting EEG sgnal, the network-based source localization technology was used to obtain the cortical current density under seven rhythms, and the energy values of the eight large-scale brain networks were obtained according to the area covered by each network. The one-way analysis of variance was performed on the energy of large-scale brain networks at different altitudes. The experimental results show that the large-scale brain network exhibts significant difference between different altitude and the brain network energy of deep structure in 4 500 m is significantly reduced under θ, α1, β1 and β2 rhythms. The brain network energy of visual network and iimbic under the α1 and β2 rhythms, and the default network under the α1 rhythm are all characterzed by a significant increase in 3600 m and a significant decrease in 4500 m. In addition, the energy value mcreases with the increase of altitude, but the energy value at the highest altitude is the lowest, so it is speculated that there exists a threshold of the alttude nfluence on brain functon.
KW - hypoxia
KW - large scale brain networks
KW - resting electroencephalogram
UR - https://www.scopus.com/pages/publications/85169091064
U2 - 10.16355/j.cnki.issn1007-9432tyut.2020.04.007
DO - 10.16355/j.cnki.issn1007-9432tyut.2020.04.007
M3 - 文章
AN - SCOPUS:85169091064
SN - 1007-9432
VL - 51
SP - 530
EP - 534
JO - Journal of Taiyuan University of Technology
JF - Journal of Taiyuan University of Technology
IS - 4
ER -