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Individualized Functional Parcellation of the Human Amygdala Using a Semi-supervised Clustering Method: A 7T Resting State fMRI Study

The amygdala plays an important role in emotional functions and its dysfunction is considered to be associated with multiple psychiatric disorders in humans. Cytoarchitectonic mapping has demonstrated that the human amygdala complex comprises several subregions. However, it's difficult to delin...

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Autores principales: Zhang, Xianchang, Cheng, Hewei, Zuo, Zhentao, Zhou, Ke, Cong, Fei, Wang, Bo, Zhuo, Yan, Chen, Lin, Xue, Rong, Fan, Yong
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Frontiers Media S.A. 2018
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5932177/
https://www.ncbi.nlm.nih.gov/pubmed/29755313
http://dx.doi.org/10.3389/fnins.2018.00270
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author Zhang, Xianchang
Cheng, Hewei
Zuo, Zhentao
Zhou, Ke
Cong, Fei
Wang, Bo
Zhuo, Yan
Chen, Lin
Xue, Rong
Fan, Yong
author_facet Zhang, Xianchang
Cheng, Hewei
Zuo, Zhentao
Zhou, Ke
Cong, Fei
Wang, Bo
Zhuo, Yan
Chen, Lin
Xue, Rong
Fan, Yong
author_sort Zhang, Xianchang
collection PubMed
description The amygdala plays an important role in emotional functions and its dysfunction is considered to be associated with multiple psychiatric disorders in humans. Cytoarchitectonic mapping has demonstrated that the human amygdala complex comprises several subregions. However, it's difficult to delineate boundaries of these subregions in vivo even if using state of the art high resolution structural MRI. Previous attempts to parcellate this small structure using unsupervised clustering methods based on resting state fMRI data suffered from the low spatial resolution of typical fMRI data, and it remains challenging for the unsupervised methods to define subregions of the amygdala in vivo. In this study, we developed a novel brain parcellation method to segment the human amygdala into spatially contiguous subregions based on 7T high resolution fMRI data. The parcellation was implemented using a semi-supervised spectral clustering (SSC) algorithm at an individual subject level. Under guidance of prior information derived from the Julich cytoarchitectonic atlas, our method clustered voxels of the amygdala into subregions according to similarity measures of their functional signals. As a result, three distinct amygdala subregions can be obtained in each hemisphere for every individual subject. Compared with the cytoarchitectonic atlas, our method achieved better performance in terms of subregional functional homogeneity. Validation experiments have also demonstrated that the amygdala subregions obtained by our method have distinctive, lateralized functional connectivity (FC) patterns. Our study has demonstrated that the semi-supervised brain parcellation method is a powerful tool for exploring amygdala subregional functions.
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spelling pubmed-59321772018-05-11 Individualized Functional Parcellation of the Human Amygdala Using a Semi-supervised Clustering Method: A 7T Resting State fMRI Study Zhang, Xianchang Cheng, Hewei Zuo, Zhentao Zhou, Ke Cong, Fei Wang, Bo Zhuo, Yan Chen, Lin Xue, Rong Fan, Yong Front Neurosci Neuroscience The amygdala plays an important role in emotional functions and its dysfunction is considered to be associated with multiple psychiatric disorders in humans. Cytoarchitectonic mapping has demonstrated that the human amygdala complex comprises several subregions. However, it's difficult to delineate boundaries of these subregions in vivo even if using state of the art high resolution structural MRI. Previous attempts to parcellate this small structure using unsupervised clustering methods based on resting state fMRI data suffered from the low spatial resolution of typical fMRI data, and it remains challenging for the unsupervised methods to define subregions of the amygdala in vivo. In this study, we developed a novel brain parcellation method to segment the human amygdala into spatially contiguous subregions based on 7T high resolution fMRI data. The parcellation was implemented using a semi-supervised spectral clustering (SSC) algorithm at an individual subject level. Under guidance of prior information derived from the Julich cytoarchitectonic atlas, our method clustered voxels of the amygdala into subregions according to similarity measures of their functional signals. As a result, three distinct amygdala subregions can be obtained in each hemisphere for every individual subject. Compared with the cytoarchitectonic atlas, our method achieved better performance in terms of subregional functional homogeneity. Validation experiments have also demonstrated that the amygdala subregions obtained by our method have distinctive, lateralized functional connectivity (FC) patterns. Our study has demonstrated that the semi-supervised brain parcellation method is a powerful tool for exploring amygdala subregional functions. Frontiers Media S.A. 2018-04-26 /pmc/articles/PMC5932177/ /pubmed/29755313 http://dx.doi.org/10.3389/fnins.2018.00270 Text en Copyright © 2018 Zhang, Cheng, Zuo, Zhou, Cong, Wang, Zhuo, Chen, Xue and Fan. http://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 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 Neuroscience
Zhang, Xianchang
Cheng, Hewei
Zuo, Zhentao
Zhou, Ke
Cong, Fei
Wang, Bo
Zhuo, Yan
Chen, Lin
Xue, Rong
Fan, Yong
Individualized Functional Parcellation of the Human Amygdala Using a Semi-supervised Clustering Method: A 7T Resting State fMRI Study
title Individualized Functional Parcellation of the Human Amygdala Using a Semi-supervised Clustering Method: A 7T Resting State fMRI Study
title_full Individualized Functional Parcellation of the Human Amygdala Using a Semi-supervised Clustering Method: A 7T Resting State fMRI Study
title_fullStr Individualized Functional Parcellation of the Human Amygdala Using a Semi-supervised Clustering Method: A 7T Resting State fMRI Study
title_full_unstemmed Individualized Functional Parcellation of the Human Amygdala Using a Semi-supervised Clustering Method: A 7T Resting State fMRI Study
title_short Individualized Functional Parcellation of the Human Amygdala Using a Semi-supervised Clustering Method: A 7T Resting State fMRI Study
title_sort individualized functional parcellation of the human amygdala using a semi-supervised clustering method: a 7t resting state fmri study
topic Neuroscience
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5932177/
https://www.ncbi.nlm.nih.gov/pubmed/29755313
http://dx.doi.org/10.3389/fnins.2018.00270
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