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QuNex—An integrative platform for reproducible neuroimaging analytics

INTRODUCTION: Neuroimaging technology has experienced explosive growth and transformed the study of neural mechanisms across health and disease. However, given the diversity of sophisticated tools for handling neuroimaging data, the field faces challenges in method integration, particularly across m...

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Autores principales: Ji, Jie Lisa, Demšar, Jure, Fonteneau, Clara, Tamayo, Zailyn, Pan, Lining, Kraljič, Aleksij, Matkovič, Andraž, Purg, Nina, Helmer, Markus, Warrington, Shaun, Winkler, Anderson, Zerbi, Valerio, Coalson, Timothy S., Glasser, Matthew F., Harms, Michael P., Sotiropoulos, Stamatios N., Murray, John D., Anticevic, Alan, Repovš, Grega
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Frontiers Media S.A. 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10113546/
https://www.ncbi.nlm.nih.gov/pubmed/37090033
http://dx.doi.org/10.3389/fninf.2023.1104508
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author Ji, Jie Lisa
Demšar, Jure
Fonteneau, Clara
Tamayo, Zailyn
Pan, Lining
Kraljič, Aleksij
Matkovič, Andraž
Purg, Nina
Helmer, Markus
Warrington, Shaun
Winkler, Anderson
Zerbi, Valerio
Coalson, Timothy S.
Glasser, Matthew F.
Harms, Michael P.
Sotiropoulos, Stamatios N.
Murray, John D.
Anticevic, Alan
Repovš, Grega
author_facet Ji, Jie Lisa
Demšar, Jure
Fonteneau, Clara
Tamayo, Zailyn
Pan, Lining
Kraljič, Aleksij
Matkovič, Andraž
Purg, Nina
Helmer, Markus
Warrington, Shaun
Winkler, Anderson
Zerbi, Valerio
Coalson, Timothy S.
Glasser, Matthew F.
Harms, Michael P.
Sotiropoulos, Stamatios N.
Murray, John D.
Anticevic, Alan
Repovš, Grega
author_sort Ji, Jie Lisa
collection PubMed
description INTRODUCTION: Neuroimaging technology has experienced explosive growth and transformed the study of neural mechanisms across health and disease. However, given the diversity of sophisticated tools for handling neuroimaging data, the field faces challenges in method integration, particularly across multiple modalities and species. Specifically, researchers often have to rely on siloed approaches which limit reproducibility, with idiosyncratic data organization and limited software interoperability. METHODS: To address these challenges, we have developed Quantitative Neuroimaging Environment & Toolbox (QuNex), a platform for consistent end-to-end processing and analytics. QuNex provides several novel functionalities for neuroimaging analyses, including a “turnkey” command for the reproducible deployment of custom workflows, from onboarding raw data to generating analytic features. RESULTS: The platform enables interoperable integration of multi-modal, community-developed neuroimaging software through an extension framework with a software development kit (SDK) for seamless integration of community tools. Critically, it supports high-throughput, parallel processing in high-performance compute environments, either locally or in the cloud. Notably, QuNex has successfully processed over 10,000 scans across neuroimaging consortia, including multiple clinical datasets. Moreover, QuNex enables integration of human and non-human workflows via a cohesive translational platform. DISCUSSION: Collectively, this effort stands to significantly impact neuroimaging method integration across acquisition approaches, pipelines, datasets, computational environments, and species. Building on this platform will enable more rapid, scalable, and reproducible impact of neuroimaging technology across health and disease.
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spelling pubmed-101135462023-04-20 QuNex—An integrative platform for reproducible neuroimaging analytics Ji, Jie Lisa Demšar, Jure Fonteneau, Clara Tamayo, Zailyn Pan, Lining Kraljič, Aleksij Matkovič, Andraž Purg, Nina Helmer, Markus Warrington, Shaun Winkler, Anderson Zerbi, Valerio Coalson, Timothy S. Glasser, Matthew F. Harms, Michael P. Sotiropoulos, Stamatios N. Murray, John D. Anticevic, Alan Repovš, Grega Front Neuroinform Neuroscience INTRODUCTION: Neuroimaging technology has experienced explosive growth and transformed the study of neural mechanisms across health and disease. However, given the diversity of sophisticated tools for handling neuroimaging data, the field faces challenges in method integration, particularly across multiple modalities and species. Specifically, researchers often have to rely on siloed approaches which limit reproducibility, with idiosyncratic data organization and limited software interoperability. METHODS: To address these challenges, we have developed Quantitative Neuroimaging Environment & Toolbox (QuNex), a platform for consistent end-to-end processing and analytics. QuNex provides several novel functionalities for neuroimaging analyses, including a “turnkey” command for the reproducible deployment of custom workflows, from onboarding raw data to generating analytic features. RESULTS: The platform enables interoperable integration of multi-modal, community-developed neuroimaging software through an extension framework with a software development kit (SDK) for seamless integration of community tools. Critically, it supports high-throughput, parallel processing in high-performance compute environments, either locally or in the cloud. Notably, QuNex has successfully processed over 10,000 scans across neuroimaging consortia, including multiple clinical datasets. Moreover, QuNex enables integration of human and non-human workflows via a cohesive translational platform. DISCUSSION: Collectively, this effort stands to significantly impact neuroimaging method integration across acquisition approaches, pipelines, datasets, computational environments, and species. Building on this platform will enable more rapid, scalable, and reproducible impact of neuroimaging technology across health and disease. Frontiers Media S.A. 2023-04-05 /pmc/articles/PMC10113546/ /pubmed/37090033 http://dx.doi.org/10.3389/fninf.2023.1104508 Text en Copyright © 2023 Ji, Demšar, Fonteneau, Tamayo, Pan, Kraljič, Matkovič, Purg, Helmer, Warrington, Winkler, Zerbi, Coalson, Glasser, Harms, Sotiropoulos, Murray, Anticevic and Repovš. 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 Neuroscience
Ji, Jie Lisa
Demšar, Jure
Fonteneau, Clara
Tamayo, Zailyn
Pan, Lining
Kraljič, Aleksij
Matkovič, Andraž
Purg, Nina
Helmer, Markus
Warrington, Shaun
Winkler, Anderson
Zerbi, Valerio
Coalson, Timothy S.
Glasser, Matthew F.
Harms, Michael P.
Sotiropoulos, Stamatios N.
Murray, John D.
Anticevic, Alan
Repovš, Grega
QuNex—An integrative platform for reproducible neuroimaging analytics
title QuNex—An integrative platform for reproducible neuroimaging analytics
title_full QuNex—An integrative platform for reproducible neuroimaging analytics
title_fullStr QuNex—An integrative platform for reproducible neuroimaging analytics
title_full_unstemmed QuNex—An integrative platform for reproducible neuroimaging analytics
title_short QuNex—An integrative platform for reproducible neuroimaging analytics
title_sort qunex—an integrative platform for reproducible neuroimaging analytics
topic Neuroscience
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10113546/
https://www.ncbi.nlm.nih.gov/pubmed/37090033
http://dx.doi.org/10.3389/fninf.2023.1104508
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