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BrainSuite BIDS App: Containerized Workflows for MRI Analysis

View ORCID ProfileYeun Kim, View ORCID ProfileAnand A. Joshi, View ORCID ProfileSoyoung Choi, View ORCID ProfileShantanu H. Joshi, View ORCID ProfileChitresh Bhushan, View ORCID ProfileDivya Varadarajan, View ORCID ProfileJustin P. Haldar, View ORCID ProfileRichard M. Leahy, View ORCID ProfileDavid W. Shattuck
doi: https://doi.org/10.1101/2023.03.14.532686
Yeun Kim
aAhmanson-Lovelace Brain Mapping Center, Department of Neurology, David Geffen School of Medicine at UCLA, Los Angeles, CA, USA
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  • ORCID record for Yeun Kim
Anand A. Joshi
bSignal and Image Processing Institute, Department of Electrical Engineering – Systems, University of Southern California, Los Angeles, CA, USA
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Soyoung Choi
bSignal and Image Processing Institute, Department of Electrical Engineering – Systems, University of Southern California, Los Angeles, CA, USA
cNeuroscience Graduate Program, University of Southern California, Los Angeles, CA, USA
dVanderbilt University Institute of Imaging Science, Vanderbilt University Medical Center, Nashville, TN, USA
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Shantanu H. Joshi
aAhmanson-Lovelace Brain Mapping Center, Department of Neurology, David Geffen School of Medicine at UCLA, Los Angeles, CA, USA
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Chitresh Bhushan
bSignal and Image Processing Institute, Department of Electrical Engineering – Systems, University of Southern California, Los Angeles, CA, USA
eGE Research, Schenectady, NY, USA
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Divya Varadarajan
bSignal and Image Processing Institute, Department of Electrical Engineering – Systems, University of Southern California, Los Angeles, CA, USA
fAthinoula A. Martinos Center for Biomedical Imaging, Massachusetts General Hospital, Charlestown, MA, USA
gDepartment of Radiology, Harvard Medical School, Boston, MA, USA
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Justin P. Haldar
bSignal and Image Processing Institute, Department of Electrical Engineering – Systems, University of Southern California, Los Angeles, CA, USA
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Richard M. Leahy
bSignal and Image Processing Institute, Department of Electrical Engineering – Systems, University of Southern California, Los Angeles, CA, USA
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David W. Shattuck
aAhmanson-Lovelace Brain Mapping Center, Department of Neurology, David Geffen School of Medicine at UCLA, Los Angeles, CA, USA
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  • For correspondence: dshattuck@g.ucla.edu
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Abstract

There has been a concerted effort by the neuroimaging community to establish standards for computational methods for data analysis that promote reproducibility and portability. In particular, the Brain Imaging Data Structure (BIDS) specifies a standard for storing imaging data, and the related BIDS App methodology provides a standard for implementing containerized processing environments that include all necessary dependencies to process BIDS datasets using image processing workflows. We present the BrainSuite BIDS App, which encapsulates the core MRI processing functionality of BrainSuite within the BIDS App framework. Specifically, the BrainSuite BIDS App implements a participant-level workflow comprising three pipelines and a corresponding set of group-level analysis workflows for processing the participant-level outputs. The BrainSuite Anatomical Pipeline (BAP) extracts cortical surface models from a T1-weighted (T1w) MRI. It then performs surface-constrained volumetric registration to align the T1w MRI to a labeled anatomical atlas, which is used to delineate anatomical regions of interest in the MRI brain volume and on the cortical surface models. The BrainSuite Diffusion Pipeline (BDP) processes diffusion-weighted imaging (DWI) data, with steps that include coregistering the DWI data to the T1w scan, correcting for geometric image distortion, and fitting diffusion models to the DWI data. The BrainSuite Functional Pipeline (BFP) performs fMRI processing using a combination of FSL, AFNI, and BrainSuite tools. BFP coregisters the fMRI data to the T1w image, then transforms the data to the anatomical atlas space and to the Human Connectome Project’s grayordinate space. Each of these outputs can then be processed during group-level analysis. The outputs of BAP and BDP are analyzed using the BrainSuite Statistics in R (bssr) toolbox, which provides functionality for hypothesis testing and statistical modeling. The outputs of BFP can be analyzed using atlas-based or atlas-free statistical methods during group-level processing. These analyses include the application of BrainSync, which synchronizes the time-series data temporally and enables comparison of resting-state or task-based fMRI data across scans. We also present the BrainSuite Dashboard quality control system, which provides a browser-based interface for reviewing the outputs of individual modules of the participant-level pipelines across a study in real-time as they are generated. BrainSuite Dashboard facilitates rapid review of intermediate results, enabling users to identify processing errors and make adjustments to processing parameters if necessary. The comprehensive functionality included in the BrainSuite BIDS App provides a mechanism for rapidly deploying the BrainSuite workflows into new environments to perform large-scale studies. We demonstrate the capabilities of the BrainSuite BIDS App using structural, diffusion, and functional MRI data from the Amsterdam Open MRI Collection’s Population Imaging of Psychology dataset.

Competing Interest Statement

The authors have declared no competing interest.

Footnotes

  • Email addresses: yeunkim10{at}engineering.ucla.edu (Yeun Kim), ajoshi{at}usc.edu (Anand A. Joshi), sy.choi{at}vumc.org (Soyoung Choi), s.joshi{at}g.ucla.edu (Shantanu H. Joshi), chitresh.bhushan{at}ge.com (Chitresh Bhushan), dvaradarajan{at}mgh.harvard.edu (Divya Varadarajan), jhaldar{at}usc.edu (Justin P. Haldar), leahy{at}sipi.usc.edu (Richard M. Leahy), dshattuck{at}ucla.edu (David W. Shattuck)

  • https://github.com/bids-apps/BrainSuite

  • https://github.com/BrainSuite/BrainSuiteBIDSAppSampleData

  • https://github.com/BrainSuite/BrainSuiteBIDSAppPaperData

  • https://brainsuite.org/BIDS/

  • Abbreviations

    ADE
    Anisotropic diffusion equation;
    BAP
    BrainSuite Anatomical Pipeline;
    BDP
    BrainSuite Diffusion Pipeline;
    BFP
    BrainSuite Functional Pipeline;
    BIDS
    Brain Imaging Data Structure;
    BSE
    Brain Surface Extractor;
    bssr
    BrainSuite Statistics in R;
    ERFO
    Ensemble Average Propagator Response Function Optimized ODF estimation;
    FRACT
    Funk-Radon and Cosine Transform;
    FRT
    Funk-Radon Transform;
    GPDF
    Global PDF-based nonlocal means filter;
    INVERSION
    Inverse contrast Normalization for VERy Simple registratION;
    P-FIT
    Parieto-frontal integration theory;
    QA
    Quality assessment;
    QC
    Quality control;
    RAPM
    Raven’s Advanced Progressive Matrices;
    RMD
    R Markdown;
    RPI
    Right-posterior-inferior;
    SBA
    Surface-based analysis;
    SSIM
    Structural similarity index;
    SVReg
    Surface-constrained volumetric registration;
    TBM
    Tensor-based morphometry;
    WAIS
    Wechsler Adult Intelligence Scale;
  • Copyright 
    The copyright holder for this preprint is the author/funder, who has granted bioRxiv a license to display the preprint in perpetuity. It is made available under a CC-BY-NC-ND 4.0 International license.
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    BrainSuite BIDS App: Containerized Workflows for MRI Analysis
    Yeun Kim, Anand A. Joshi, Soyoung Choi, Shantanu H. Joshi, Chitresh Bhushan, Divya Varadarajan, Justin P. Haldar, Richard M. Leahy, David W. Shattuck
    bioRxiv 2023.03.14.532686; doi: https://doi.org/10.1101/2023.03.14.532686
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    BrainSuite BIDS App: Containerized Workflows for MRI Analysis
    Yeun Kim, Anand A. Joshi, Soyoung Choi, Shantanu H. Joshi, Chitresh Bhushan, Divya Varadarajan, Justin P. Haldar, Richard M. Leahy, David W. Shattuck
    bioRxiv 2023.03.14.532686; doi: https://doi.org/10.1101/2023.03.14.532686

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