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Altered resting-state dynamic functional brain networks in major depressive disorder: Findings from the REST-meta-MDD consortium
BACKGROUND: Major depressive disorder (MDD) is known to be characterized by altered brain functional connectivity (FC) patterns. However, whether and how the features of dynamic FC would change in patients with MDD are unclear. In this study, we aimed to characterize dynamic FC in MDD using a large...
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Formato: | Online Artículo Texto |
Lenguaje: | English |
Publicado: |
Elsevier
2020
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Materias: | |
Acceso en línea: | https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7229351/ https://www.ncbi.nlm.nih.gov/pubmed/31953148 http://dx.doi.org/10.1016/j.nicl.2020.102163 |
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author | Long, Yicheng Cao, Hengyi Yan, Chaogan Chen, Xiao Li, Le Castellanos, Francisco Xavier Bai, Tongjian Bo, Qijing Chen, Guanmao Chen, Ningxuan Chen, Wei Cheng, Chang Cheng, Yuqi Cui, Xilong Duan, Jia Fang, Yiru Gong, Qiyong Guo, Wenbin Hou, Zhenghua Hu, Lan Kuang, Li Li, Feng Li, Kaiming Li, Tao Liu, Yansong Luo, Qinghua Meng, Huaqing Peng, Daihui Qiu, Haitang Qiu, Jiang Shen, Yuedi Shi, Yushu Si, Tianmei Wang, Chuanyue Wang, Fei Wang, Kai Wang, Li Wang, Xiang Wang, Ying Wu, Xiaoping Wu, Xinran Xie, Chunming Xie, Guangrong Xie, Haiyan Xie, Peng Xu, Xiufeng Yang, Hong Yang, Jian Yao, Jiashu Yao, Shuqiao Yin, Yingying Yuan, Yonggui Zhang, Aixia Zhang, Hong Zhang, Kerang Zhang, Lei Zhang, Zhijun Zhou, Rubai Zhou, Yiting Zhu, Junjuan Zou, Chaojie Zang, Yufeng Zhao, Jingping Kin-yuen Chan, Calais Pu, Weidan Liu, Zhening |
author_facet | Long, Yicheng Cao, Hengyi Yan, Chaogan Chen, Xiao Li, Le Castellanos, Francisco Xavier Bai, Tongjian Bo, Qijing Chen, Guanmao Chen, Ningxuan Chen, Wei Cheng, Chang Cheng, Yuqi Cui, Xilong Duan, Jia Fang, Yiru Gong, Qiyong Guo, Wenbin Hou, Zhenghua Hu, Lan Kuang, Li Li, Feng Li, Kaiming Li, Tao Liu, Yansong Luo, Qinghua Meng, Huaqing Peng, Daihui Qiu, Haitang Qiu, Jiang Shen, Yuedi Shi, Yushu Si, Tianmei Wang, Chuanyue Wang, Fei Wang, Kai Wang, Li Wang, Xiang Wang, Ying Wu, Xiaoping Wu, Xinran Xie, Chunming Xie, Guangrong Xie, Haiyan Xie, Peng Xu, Xiufeng Yang, Hong Yang, Jian Yao, Jiashu Yao, Shuqiao Yin, Yingying Yuan, Yonggui Zhang, Aixia Zhang, Hong Zhang, Kerang Zhang, Lei Zhang, Zhijun Zhou, Rubai Zhou, Yiting Zhu, Junjuan Zou, Chaojie Zang, Yufeng Zhao, Jingping Kin-yuen Chan, Calais Pu, Weidan Liu, Zhening |
author_sort | Long, Yicheng |
collection | PubMed |
description | BACKGROUND: Major depressive disorder (MDD) is known to be characterized by altered brain functional connectivity (FC) patterns. However, whether and how the features of dynamic FC would change in patients with MDD are unclear. In this study, we aimed to characterize dynamic FC in MDD using a large multi-site sample and a novel dynamic network-based approach. METHODS: Resting-state functional magnetic resonance imaging (fMRI) data were acquired from a total of 460 MDD patients and 473 healthy controls, as a part of the REST-meta-MDD consortium. Resting-state dynamic functional brain networks were constructed for each subject by a sliding-window approach. Multiple spatio-temporal features of dynamic brain networks, including temporal variability, temporal clustering and temporal efficiency, were then compared between patients and healthy subjects at both global and local levels. RESULTS: The group of MDD patients showed significantly higher temporal variability, lower temporal correlation coefficient (indicating decreased temporal clustering) and shorter characteristic temporal path length (indicating increased temporal efficiency) compared with healthy controls (corrected p < 3.14×10(−3)). Corresponding local changes in MDD were mainly found in the default-mode, sensorimotor and subcortical areas. Measures of temporal variability and characteristic temporal path length were significantly correlated with depression severity in patients (corrected p < 0.05). Moreover, the observed between-group differences were robustly present in both first-episode, drug-naïve (FEDN) and non-FEDN patients. CONCLUSIONS: Our findings suggest that excessive temporal variations of brain FC, reflecting abnormal communications between large-scale bran networks over time, may underlie the neuropathology of MDD. |
format | Online Article Text |
id | pubmed-7229351 |
institution | National Center for Biotechnology Information |
language | English |
publishDate | 2020 |
publisher | Elsevier |
record_format | MEDLINE/PubMed |
spelling | pubmed-72293512020-05-20 Altered resting-state dynamic functional brain networks in major depressive disorder: Findings from the REST-meta-MDD consortium Long, Yicheng Cao, Hengyi Yan, Chaogan Chen, Xiao Li, Le Castellanos, Francisco Xavier Bai, Tongjian Bo, Qijing Chen, Guanmao Chen, Ningxuan Chen, Wei Cheng, Chang Cheng, Yuqi Cui, Xilong Duan, Jia Fang, Yiru Gong, Qiyong Guo, Wenbin Hou, Zhenghua Hu, Lan Kuang, Li Li, Feng Li, Kaiming Li, Tao Liu, Yansong Luo, Qinghua Meng, Huaqing Peng, Daihui Qiu, Haitang Qiu, Jiang Shen, Yuedi Shi, Yushu Si, Tianmei Wang, Chuanyue Wang, Fei Wang, Kai Wang, Li Wang, Xiang Wang, Ying Wu, Xiaoping Wu, Xinran Xie, Chunming Xie, Guangrong Xie, Haiyan Xie, Peng Xu, Xiufeng Yang, Hong Yang, Jian Yao, Jiashu Yao, Shuqiao Yin, Yingying Yuan, Yonggui Zhang, Aixia Zhang, Hong Zhang, Kerang Zhang, Lei Zhang, Zhijun Zhou, Rubai Zhou, Yiting Zhu, Junjuan Zou, Chaojie Zang, Yufeng Zhao, Jingping Kin-yuen Chan, Calais Pu, Weidan Liu, Zhening Neuroimage Clin Articles from the Special Issue on on "Imaging-based biomarkers in psychiatry – diagnosis, prognosis, outcomes" edited by Claire Wilcox and Vince Calhoun BACKGROUND: Major depressive disorder (MDD) is known to be characterized by altered brain functional connectivity (FC) patterns. However, whether and how the features of dynamic FC would change in patients with MDD are unclear. In this study, we aimed to characterize dynamic FC in MDD using a large multi-site sample and a novel dynamic network-based approach. METHODS: Resting-state functional magnetic resonance imaging (fMRI) data were acquired from a total of 460 MDD patients and 473 healthy controls, as a part of the REST-meta-MDD consortium. Resting-state dynamic functional brain networks were constructed for each subject by a sliding-window approach. Multiple spatio-temporal features of dynamic brain networks, including temporal variability, temporal clustering and temporal efficiency, were then compared between patients and healthy subjects at both global and local levels. RESULTS: The group of MDD patients showed significantly higher temporal variability, lower temporal correlation coefficient (indicating decreased temporal clustering) and shorter characteristic temporal path length (indicating increased temporal efficiency) compared with healthy controls (corrected p < 3.14×10(−3)). Corresponding local changes in MDD were mainly found in the default-mode, sensorimotor and subcortical areas. Measures of temporal variability and characteristic temporal path length were significantly correlated with depression severity in patients (corrected p < 0.05). Moreover, the observed between-group differences were robustly present in both first-episode, drug-naïve (FEDN) and non-FEDN patients. CONCLUSIONS: Our findings suggest that excessive temporal variations of brain FC, reflecting abnormal communications between large-scale bran networks over time, may underlie the neuropathology of MDD. Elsevier 2020-01-07 /pmc/articles/PMC7229351/ /pubmed/31953148 http://dx.doi.org/10.1016/j.nicl.2020.102163 Text en © 2020 The Authors http://creativecommons.org/licenses/by/4.0/ This is an open access article under the CC BY license (http://creativecommons.org/licenses/by/4.0/). |
spellingShingle | Articles from the Special Issue on on "Imaging-based biomarkers in psychiatry – diagnosis, prognosis, outcomes" edited by Claire Wilcox and Vince Calhoun Long, Yicheng Cao, Hengyi Yan, Chaogan Chen, Xiao Li, Le Castellanos, Francisco Xavier Bai, Tongjian Bo, Qijing Chen, Guanmao Chen, Ningxuan Chen, Wei Cheng, Chang Cheng, Yuqi Cui, Xilong Duan, Jia Fang, Yiru Gong, Qiyong Guo, Wenbin Hou, Zhenghua Hu, Lan Kuang, Li Li, Feng Li, Kaiming Li, Tao Liu, Yansong Luo, Qinghua Meng, Huaqing Peng, Daihui Qiu, Haitang Qiu, Jiang Shen, Yuedi Shi, Yushu Si, Tianmei Wang, Chuanyue Wang, Fei Wang, Kai Wang, Li Wang, Xiang Wang, Ying Wu, Xiaoping Wu, Xinran Xie, Chunming Xie, Guangrong Xie, Haiyan Xie, Peng Xu, Xiufeng Yang, Hong Yang, Jian Yao, Jiashu Yao, Shuqiao Yin, Yingying Yuan, Yonggui Zhang, Aixia Zhang, Hong Zhang, Kerang Zhang, Lei Zhang, Zhijun Zhou, Rubai Zhou, Yiting Zhu, Junjuan Zou, Chaojie Zang, Yufeng Zhao, Jingping Kin-yuen Chan, Calais Pu, Weidan Liu, Zhening Altered resting-state dynamic functional brain networks in major depressive disorder: Findings from the REST-meta-MDD consortium |
title | Altered resting-state dynamic functional brain networks in major depressive disorder: Findings from the REST-meta-MDD consortium |
title_full | Altered resting-state dynamic functional brain networks in major depressive disorder: Findings from the REST-meta-MDD consortium |
title_fullStr | Altered resting-state dynamic functional brain networks in major depressive disorder: Findings from the REST-meta-MDD consortium |
title_full_unstemmed | Altered resting-state dynamic functional brain networks in major depressive disorder: Findings from the REST-meta-MDD consortium |
title_short | Altered resting-state dynamic functional brain networks in major depressive disorder: Findings from the REST-meta-MDD consortium |
title_sort | altered resting-state dynamic functional brain networks in major depressive disorder: findings from the rest-meta-mdd consortium |
topic | Articles from the Special Issue on on "Imaging-based biomarkers in psychiatry – diagnosis, prognosis, outcomes" edited by Claire Wilcox and Vince Calhoun |
url | https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7229351/ https://www.ncbi.nlm.nih.gov/pubmed/31953148 http://dx.doi.org/10.1016/j.nicl.2020.102163 |
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