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Common Brain Networks Between Major Depressive-Disorder Diagnosis and Symptoms of Depression That Are Validated for Independent Cohorts

Large-scale neuroimaging data acquired and shared by multiple institutions are essential to advance neuroscientific understanding of pathophysiological mechanisms in psychiatric disorders, such as major depressive disorder (MDD). About 75% of studies that have applied machine learning technique to n...

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Autores principales: Yamashita, Ayumu, Sakai, Yuki, Yamada, Takashi, Yahata, Noriaki, Kunimatsu, Akira, Okada, Naohiro, Itahashi, Takashi, Hashimoto, Ryuichiro, Mizuta, Hiroto, Ichikawa, Naho, Takamura, Masahiro, Okada, Go, Yamagata, Hirotaka, Harada, Kenichiro, Matsuo, Koji, Tanaka, Saori C., Kawato, Mitsuo, Kasai, Kiyoto, Kato, Nobumasa, Takahashi, Hidehiko, Okamoto, Yasumasa, Yamashita, Okito, Imamizu, Hiroshi
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Frontiers Media S.A. 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8224760/
https://www.ncbi.nlm.nih.gov/pubmed/34177657
http://dx.doi.org/10.3389/fpsyt.2021.667881
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author Yamashita, Ayumu
Sakai, Yuki
Yamada, Takashi
Yahata, Noriaki
Kunimatsu, Akira
Okada, Naohiro
Itahashi, Takashi
Hashimoto, Ryuichiro
Mizuta, Hiroto
Ichikawa, Naho
Takamura, Masahiro
Okada, Go
Yamagata, Hirotaka
Harada, Kenichiro
Matsuo, Koji
Tanaka, Saori C.
Kawato, Mitsuo
Kasai, Kiyoto
Kato, Nobumasa
Takahashi, Hidehiko
Okamoto, Yasumasa
Yamashita, Okito
Imamizu, Hiroshi
author_facet Yamashita, Ayumu
Sakai, Yuki
Yamada, Takashi
Yahata, Noriaki
Kunimatsu, Akira
Okada, Naohiro
Itahashi, Takashi
Hashimoto, Ryuichiro
Mizuta, Hiroto
Ichikawa, Naho
Takamura, Masahiro
Okada, Go
Yamagata, Hirotaka
Harada, Kenichiro
Matsuo, Koji
Tanaka, Saori C.
Kawato, Mitsuo
Kasai, Kiyoto
Kato, Nobumasa
Takahashi, Hidehiko
Okamoto, Yasumasa
Yamashita, Okito
Imamizu, Hiroshi
author_sort Yamashita, Ayumu
collection PubMed
description Large-scale neuroimaging data acquired and shared by multiple institutions are essential to advance neuroscientific understanding of pathophysiological mechanisms in psychiatric disorders, such as major depressive disorder (MDD). About 75% of studies that have applied machine learning technique to neuroimaging have been based on diagnoses by clinicians. However, an increasing number of studies have highlighted the difficulty in finding a clear association between existing clinical diagnostic categories and neurobiological abnormalities. Here, using resting-state functional magnetic resonance imaging, we determined and validated resting-state functional connectivity related to depression symptoms that were thought to be directly related to neurobiological abnormalities. We then compared the resting-state functional connectivity related to depression symptoms with that related to depression diagnosis that we recently identified. In particular, for the discovery dataset with 477 participants from 4 imaging sites, we removed site differences using our recently developed harmonization method and developed a brain network prediction model of depression symptoms (Beck Depression Inventory-II [BDI] score). The prediction model significantly predicted BDI score for an independent validation dataset with 439 participants from 4 different imaging sites. Finally, we found 3 common functional connections between those related to depression symptoms and those related to MDD diagnosis. These findings contribute to a deeper understanding of the neural circuitry of depressive symptoms in MDD, a hetero-symptomatic population, revealing the neural basis of MDD.
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spelling pubmed-82247602021-06-25 Common Brain Networks Between Major Depressive-Disorder Diagnosis and Symptoms of Depression That Are Validated for Independent Cohorts Yamashita, Ayumu Sakai, Yuki Yamada, Takashi Yahata, Noriaki Kunimatsu, Akira Okada, Naohiro Itahashi, Takashi Hashimoto, Ryuichiro Mizuta, Hiroto Ichikawa, Naho Takamura, Masahiro Okada, Go Yamagata, Hirotaka Harada, Kenichiro Matsuo, Koji Tanaka, Saori C. Kawato, Mitsuo Kasai, Kiyoto Kato, Nobumasa Takahashi, Hidehiko Okamoto, Yasumasa Yamashita, Okito Imamizu, Hiroshi Front Psychiatry Psychiatry Large-scale neuroimaging data acquired and shared by multiple institutions are essential to advance neuroscientific understanding of pathophysiological mechanisms in psychiatric disorders, such as major depressive disorder (MDD). About 75% of studies that have applied machine learning technique to neuroimaging have been based on diagnoses by clinicians. However, an increasing number of studies have highlighted the difficulty in finding a clear association between existing clinical diagnostic categories and neurobiological abnormalities. Here, using resting-state functional magnetic resonance imaging, we determined and validated resting-state functional connectivity related to depression symptoms that were thought to be directly related to neurobiological abnormalities. We then compared the resting-state functional connectivity related to depression symptoms with that related to depression diagnosis that we recently identified. In particular, for the discovery dataset with 477 participants from 4 imaging sites, we removed site differences using our recently developed harmonization method and developed a brain network prediction model of depression symptoms (Beck Depression Inventory-II [BDI] score). The prediction model significantly predicted BDI score for an independent validation dataset with 439 participants from 4 different imaging sites. Finally, we found 3 common functional connections between those related to depression symptoms and those related to MDD diagnosis. These findings contribute to a deeper understanding of the neural circuitry of depressive symptoms in MDD, a hetero-symptomatic population, revealing the neural basis of MDD. Frontiers Media S.A. 2021-06-10 /pmc/articles/PMC8224760/ /pubmed/34177657 http://dx.doi.org/10.3389/fpsyt.2021.667881 Text en Copyright © 2021 Yamashita, Sakai, Yamada, Yahata, Kunimatsu, Okada, Itahashi, Hashimoto, Mizuta, Ichikawa, Takamura, Okada, Yamagata, Harada, Matsuo, Tanaka, Kawato, Kasai, Kato, Takahashi, Okamoto, Yamashita and Imamizu. https://creativecommons.org/licenses/by/4.0/This is an open-access article distributed under the terms of the Creative Commons Attribution License (CC BY). The use, distribution or reproduction in other forums is permitted, provided the original author(s) and the copyright owner(s) are credited and that the original publication in this journal is cited, in accordance with accepted academic practice. No use, distribution or reproduction is permitted which does not comply with these terms.
spellingShingle Psychiatry
Yamashita, Ayumu
Sakai, Yuki
Yamada, Takashi
Yahata, Noriaki
Kunimatsu, Akira
Okada, Naohiro
Itahashi, Takashi
Hashimoto, Ryuichiro
Mizuta, Hiroto
Ichikawa, Naho
Takamura, Masahiro
Okada, Go
Yamagata, Hirotaka
Harada, Kenichiro
Matsuo, Koji
Tanaka, Saori C.
Kawato, Mitsuo
Kasai, Kiyoto
Kato, Nobumasa
Takahashi, Hidehiko
Okamoto, Yasumasa
Yamashita, Okito
Imamizu, Hiroshi
Common Brain Networks Between Major Depressive-Disorder Diagnosis and Symptoms of Depression That Are Validated for Independent Cohorts
title Common Brain Networks Between Major Depressive-Disorder Diagnosis and Symptoms of Depression That Are Validated for Independent Cohorts
title_full Common Brain Networks Between Major Depressive-Disorder Diagnosis and Symptoms of Depression That Are Validated for Independent Cohorts
title_fullStr Common Brain Networks Between Major Depressive-Disorder Diagnosis and Symptoms of Depression That Are Validated for Independent Cohorts
title_full_unstemmed Common Brain Networks Between Major Depressive-Disorder Diagnosis and Symptoms of Depression That Are Validated for Independent Cohorts
title_short Common Brain Networks Between Major Depressive-Disorder Diagnosis and Symptoms of Depression That Are Validated for Independent Cohorts
title_sort common brain networks between major depressive-disorder diagnosis and symptoms of depression that are validated for independent cohorts
topic Psychiatry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8224760/
https://www.ncbi.nlm.nih.gov/pubmed/34177657
http://dx.doi.org/10.3389/fpsyt.2021.667881
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