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Biotypes of major depressive disorder: Neuroimaging evidence from resting-state default mode network patterns
BACKGROUND: Major depressive disorder (MDD) is heterogeneous disorder associated with aberrant functional connectivity within the default mode network (DMN). This study focused on data-driven identification and validation of potential DMN-pattern-based MDD subtypes to parse heterogeneity of the diso...
Autores principales: | , , , , , , , , , , , , , , , , , , , , , , , , , , , , , , , , , , , , , , , , , , , , , , , , , , , , , , , , , , , , , , , , , , |
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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/PMC7724374/ https://www.ncbi.nlm.nih.gov/pubmed/33396001 http://dx.doi.org/10.1016/j.nicl.2020.102514 |
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author | Liang, Sugai Deng, Wei Li, Xiaojing Greenshaw, Andrew J. Wang, Qiang Li, Mingli Ma, Xiaohong Bai, Tong-Jian Bo, Qi-Jing Cao, Jun Chen, Guan-Mao Chen, Wei Cheng, Chang Cheng, Yu-Qi Cui, Xi-Long Duan, Jia Fang, Yi-Ru Gong, Qi-Yong Guo, Wen-Bin Hou, Zheng-Hua Hu, Lan Kuang, Li Li, Feng Li, Kai-Ming Liu, Yan-Song Liu, Zhe-Ning Long, Yi-Cheng Luo, Qing-Hua Meng, Hua-Qing Peng, Dai-Hui Qiu, Hai-Tang Qiu, Jiang Shen, Yue-Di Shi, Yu-Shu Si, Tian-Mei Wang, Chuan-Yue Wang, Fei Wang, Kai Wang, Li Wang, Xiang Wang, Ying Wu, Xiao-Ping Wu, Xin-Ran Xie, Chun-Ming Xie, Guang-Rong Xie, Hai-Yan Xie, Peng Xu, Xiu-Feng Yang, Hong Yang, Jian Yu, Hua Yao, Jia-Shu Yao, Shu-Qiao Yin, Ying-Ying Yuan, Yong-Gui Zang, Yu-Feng Zhang, Ai-Xia Zhang, Hong Zhang, Ke-Rang Zhang, Zhi-Jun Zhao, Jing-Ping Zhou, Ru-Bai Zhou, Yi-Ting Zou, Chao-Jie Zuo, Xi-Nian Yan, Chao-Gan Li, Tao |
author_facet | Liang, Sugai Deng, Wei Li, Xiaojing Greenshaw, Andrew J. Wang, Qiang Li, Mingli Ma, Xiaohong Bai, Tong-Jian Bo, Qi-Jing Cao, Jun Chen, Guan-Mao Chen, Wei Cheng, Chang Cheng, Yu-Qi Cui, Xi-Long Duan, Jia Fang, Yi-Ru Gong, Qi-Yong Guo, Wen-Bin Hou, Zheng-Hua Hu, Lan Kuang, Li Li, Feng Li, Kai-Ming Liu, Yan-Song Liu, Zhe-Ning Long, Yi-Cheng Luo, Qing-Hua Meng, Hua-Qing Peng, Dai-Hui Qiu, Hai-Tang Qiu, Jiang Shen, Yue-Di Shi, Yu-Shu Si, Tian-Mei Wang, Chuan-Yue Wang, Fei Wang, Kai Wang, Li Wang, Xiang Wang, Ying Wu, Xiao-Ping Wu, Xin-Ran Xie, Chun-Ming Xie, Guang-Rong Xie, Hai-Yan Xie, Peng Xu, Xiu-Feng Yang, Hong Yang, Jian Yu, Hua Yao, Jia-Shu Yao, Shu-Qiao Yin, Ying-Ying Yuan, Yong-Gui Zang, Yu-Feng Zhang, Ai-Xia Zhang, Hong Zhang, Ke-Rang Zhang, Zhi-Jun Zhao, Jing-Ping Zhou, Ru-Bai Zhou, Yi-Ting Zou, Chao-Jie Zuo, Xi-Nian Yan, Chao-Gan Li, Tao |
author_sort | Liang, Sugai |
collection | PubMed |
description | BACKGROUND: Major depressive disorder (MDD) is heterogeneous disorder associated with aberrant functional connectivity within the default mode network (DMN). This study focused on data-driven identification and validation of potential DMN-pattern-based MDD subtypes to parse heterogeneity of the disorder. METHODS: The sample comprised 1397 participants including 690 patients with MDD and 707 healthy controls (HC) registered from multiple sites based on the REST-meta-MDD Project in China. Baseline resting-state functional magnetic resonance imaging (rs-fMRI) data was recorded for each participant. Discriminative features were selected from DMN between patients and HC. Patient subgroups were defined by K-means and principle component analysis in the multi-site datasets and validated in an independent single-site dataset. Statistical significance of resultant clustering were confirmed. Demographic and clinical variables were compared between identified patient subgroups. RESULTS: Two MDD subgroups with differing functional connectivity profiles of DMN were identified in the multi-site datasets, and relatively stable in different validation samples. The predominant dysfunctional connectivity profiles were detected among superior frontal cortex, ventral medial prefrontal cortex, posterior cingulate cortex and precuneus, whereas one subgroup exhibited increases of connectivity (hyperDMN MDD) and another subgroup showed decreases of connectivity (hypoDMN MDD). The hyperDMN subgroup in the discovery dataset had age-related severity of depressive symptoms. Patient subgroups had comparable demographic and clinical symptom variables. CONCLUSIONS: Findings suggest the existence of two neural subtypes of MDD associated with different dysfunctional DMN connectivity patterns, which may provide useful evidence for parsing heterogeneity of depression and be valuable to inform the search for personalized treatment strategies. |
format | Online Article Text |
id | pubmed-7724374 |
institution | National Center for Biotechnology Information |
language | English |
publishDate | 2020 |
publisher | Elsevier |
record_format | MEDLINE/PubMed |
spelling | pubmed-77243742020-12-13 Biotypes of major depressive disorder: Neuroimaging evidence from resting-state default mode network patterns Liang, Sugai Deng, Wei Li, Xiaojing Greenshaw, Andrew J. Wang, Qiang Li, Mingli Ma, Xiaohong Bai, Tong-Jian Bo, Qi-Jing Cao, Jun Chen, Guan-Mao Chen, Wei Cheng, Chang Cheng, Yu-Qi Cui, Xi-Long Duan, Jia Fang, Yi-Ru Gong, Qi-Yong Guo, Wen-Bin Hou, Zheng-Hua Hu, Lan Kuang, Li Li, Feng Li, Kai-Ming Liu, Yan-Song Liu, Zhe-Ning Long, Yi-Cheng Luo, Qing-Hua Meng, Hua-Qing Peng, Dai-Hui Qiu, Hai-Tang Qiu, Jiang Shen, Yue-Di Shi, Yu-Shu Si, Tian-Mei Wang, Chuan-Yue Wang, Fei Wang, Kai Wang, Li Wang, Xiang Wang, Ying Wu, Xiao-Ping Wu, Xin-Ran Xie, Chun-Ming Xie, Guang-Rong Xie, Hai-Yan Xie, Peng Xu, Xiu-Feng Yang, Hong Yang, Jian Yu, Hua Yao, Jia-Shu Yao, Shu-Qiao Yin, Ying-Ying Yuan, Yong-Gui Zang, Yu-Feng Zhang, Ai-Xia Zhang, Hong Zhang, Ke-Rang Zhang, Zhi-Jun Zhao, Jing-Ping Zhou, Ru-Bai Zhou, Yi-Ting Zou, Chao-Jie Zuo, Xi-Nian Yan, Chao-Gan Li, Tao Neuroimage Clin Regular Article BACKGROUND: Major depressive disorder (MDD) is heterogeneous disorder associated with aberrant functional connectivity within the default mode network (DMN). This study focused on data-driven identification and validation of potential DMN-pattern-based MDD subtypes to parse heterogeneity of the disorder. METHODS: The sample comprised 1397 participants including 690 patients with MDD and 707 healthy controls (HC) registered from multiple sites based on the REST-meta-MDD Project in China. Baseline resting-state functional magnetic resonance imaging (rs-fMRI) data was recorded for each participant. Discriminative features were selected from DMN between patients and HC. Patient subgroups were defined by K-means and principle component analysis in the multi-site datasets and validated in an independent single-site dataset. Statistical significance of resultant clustering were confirmed. Demographic and clinical variables were compared between identified patient subgroups. RESULTS: Two MDD subgroups with differing functional connectivity profiles of DMN were identified in the multi-site datasets, and relatively stable in different validation samples. The predominant dysfunctional connectivity profiles were detected among superior frontal cortex, ventral medial prefrontal cortex, posterior cingulate cortex and precuneus, whereas one subgroup exhibited increases of connectivity (hyperDMN MDD) and another subgroup showed decreases of connectivity (hypoDMN MDD). The hyperDMN subgroup in the discovery dataset had age-related severity of depressive symptoms. Patient subgroups had comparable demographic and clinical symptom variables. CONCLUSIONS: Findings suggest the existence of two neural subtypes of MDD associated with different dysfunctional DMN connectivity patterns, which may provide useful evidence for parsing heterogeneity of depression and be valuable to inform the search for personalized treatment strategies. Elsevier 2020-11-28 /pmc/articles/PMC7724374/ /pubmed/33396001 http://dx.doi.org/10.1016/j.nicl.2020.102514 Text en © 2020 The Author(s) http://creativecommons.org/licenses/by-nc-nd/4.0/ This is an open access article under the CC BY-NC-ND license (http://creativecommons.org/licenses/by-nc-nd/4.0/). |
spellingShingle | Regular Article Liang, Sugai Deng, Wei Li, Xiaojing Greenshaw, Andrew J. Wang, Qiang Li, Mingli Ma, Xiaohong Bai, Tong-Jian Bo, Qi-Jing Cao, Jun Chen, Guan-Mao Chen, Wei Cheng, Chang Cheng, Yu-Qi Cui, Xi-Long Duan, Jia Fang, Yi-Ru Gong, Qi-Yong Guo, Wen-Bin Hou, Zheng-Hua Hu, Lan Kuang, Li Li, Feng Li, Kai-Ming Liu, Yan-Song Liu, Zhe-Ning Long, Yi-Cheng Luo, Qing-Hua Meng, Hua-Qing Peng, Dai-Hui Qiu, Hai-Tang Qiu, Jiang Shen, Yue-Di Shi, Yu-Shu Si, Tian-Mei Wang, Chuan-Yue Wang, Fei Wang, Kai Wang, Li Wang, Xiang Wang, Ying Wu, Xiao-Ping Wu, Xin-Ran Xie, Chun-Ming Xie, Guang-Rong Xie, Hai-Yan Xie, Peng Xu, Xiu-Feng Yang, Hong Yang, Jian Yu, Hua Yao, Jia-Shu Yao, Shu-Qiao Yin, Ying-Ying Yuan, Yong-Gui Zang, Yu-Feng Zhang, Ai-Xia Zhang, Hong Zhang, Ke-Rang Zhang, Zhi-Jun Zhao, Jing-Ping Zhou, Ru-Bai Zhou, Yi-Ting Zou, Chao-Jie Zuo, Xi-Nian Yan, Chao-Gan Li, Tao Biotypes of major depressive disorder: Neuroimaging evidence from resting-state default mode network patterns |
title | Biotypes of major depressive disorder: Neuroimaging evidence from resting-state default mode network patterns |
title_full | Biotypes of major depressive disorder: Neuroimaging evidence from resting-state default mode network patterns |
title_fullStr | Biotypes of major depressive disorder: Neuroimaging evidence from resting-state default mode network patterns |
title_full_unstemmed | Biotypes of major depressive disorder: Neuroimaging evidence from resting-state default mode network patterns |
title_short | Biotypes of major depressive disorder: Neuroimaging evidence from resting-state default mode network patterns |
title_sort | biotypes of major depressive disorder: neuroimaging evidence from resting-state default mode network patterns |
topic | Regular Article |
url | https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7724374/ https://www.ncbi.nlm.nih.gov/pubmed/33396001 http://dx.doi.org/10.1016/j.nicl.2020.102514 |
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