Literature DB >> 29890329

Investigation into local white matter abnormality in emotional processing and sensorimotor areas using an automatically annotated fiber clustering in major depressive disorder.

Ye Wu1, Fan Zhang2, Nikos Makris3, Yuping Ning4, Isaiah Norton2, Shenglin She4, Hongjun Peng4, Yogesh Rathi2, Yuanjing Feng5, Huawang Wu6, Lauren J O'Donnell7.   

Abstract

This work presents an automatically annotated fiber cluster (AAFC) method to enable identification of anatomically meaningful white matter structures from the whole brain tractography. The proposed method consists of 1) a study-specific whole brain white matter parcellation using a well-established data-driven groupwise fiber clustering pipeline to segment tractography into multiple fiber clusters, and 2) a novel cluster annotation method to automatically assign an anatomical tract annotation to each fiber cluster by employing cortical parcellation information across multiple subjects. The novelty of the AAFC method is that it leverages group-wise information about the fiber clusters, including their fiber geometry and cortical terminations, to compute a tract anatomical label for each cluster in an automated fashion. We demonstrate the proposed AAFC method in an application of investigating white matter abnormality in emotional processing and sensorimotor areas in major depressive disorder (MDD). Seven tracts of interest related to emotional processing and sensorimotor functions are automatically identified using the proposed AAFC method as well as a comparable method that uses a cortical parcellation alone. Experimental results indicate that our proposed method is more consistent in identifying the tracts across subjects and across hemispheres in terms of the number of fibers. In addition, we perform a between-group statistical analysis in 31 MDD patients and 62 healthy subjects on the identified tracts using our AAFC method. We find statistical differences in diffusion measures in local regions within a fiber tract (e.g. 4 fiber clusters within the identified left hemisphere cingulum bundle (consisting of 14 clusters) are significantly different between the two groups), suggesting the ability of our method in identifying potential abnormality specific to subdivisions of a white matter structure.
Copyright © 2018. Published by Elsevier Inc.

Entities:  

Keywords:  Diffusion MRI; Fiber clustering; MDD; Tractography; White matter

Mesh:

Year:  2018        PMID: 29890329      PMCID: PMC6415925          DOI: 10.1016/j.neuroimage.2018.06.019

Source DB:  PubMed          Journal:  Neuroimage        ISSN: 1053-8119            Impact factor:   6.556


  120 in total

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3.  Predicting human resting-state functional connectivity from structural connectivity.

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4.  Mapping anatomical connectivity patterns of human cerebral cortex using in vivo diffusion tensor imaging tractography.

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5.  White matter integrity, fiber count, and other fallacies: the do's and don'ts of diffusion MRI.

Authors:  Derek K Jones; Thomas R Knösche; Robert Turner
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6.  A meta-analysis of emotional reactivity in major depressive disorder.

Authors:  Lauren M Bylsma; Bethany H Morris; Jonathan Rottenberg
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9.  Multimodal functional and structural neuroimaging investigation of major depressive disorder following treatment with duloxetine.

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2.  An anatomically curated fiber clustering white matter atlas for consistent white matter tract parcellation across the lifespan.

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4.  Test-retest reproducibility of white matter parcellation using diffusion MRI tractography fiber clustering.

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Review 5.  Quantitative mapping of the brain's structural connectivity using diffusion MRI tractography: A review.

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6.  The trajectory of the medial longitudinal fasciculus in the human brain: A diffusion imaging-based tractography study.

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7.  Automatic oculomotor nerve identification based on data-driven fiber clustering.

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8.  Assessing the Reliability of Template-Based Clustering for Tractography in Healthy Human Adults.

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9.  Sex-Related Differences in White Matter Asymmetry and Its Implications for Verbal Working Memory in Psychosis High-Risk State.

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