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Multi-echo Acquisition and Thermal Denoising Advances Infant Precision Functional Imaging

The characterization of individual functional brain organization with Precision Functional Mapping has provided important insights in recent years in adults. However, little is known about the ontogeny of inter-individual differences in brain functional organization during human development, but pre...

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Autores principales: Moser, Julia, Koirala, Sanju, Madison, Thomas, Labonte, Alyssa K., Carrasco, Cristian Morales, Feczko, Eric, Moore, Lucille A., Ahmed, Weli, Myers, Michael J., Yacoub, Essa, Trevo-Clemmens, Brenden, Larsen, Bart, Laumann, Timothy O., Nelson, Steven M., Vizioli, Luca, Sylvester, Chad M., Fair, Damien A.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Cold Spring Harbor Laboratory 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10634909/
https://www.ncbi.nlm.nih.gov/pubmed/37961636
http://dx.doi.org/10.1101/2023.10.27.564416
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author Moser, Julia
Koirala, Sanju
Madison, Thomas
Labonte, Alyssa K.
Carrasco, Cristian Morales
Feczko, Eric
Moore, Lucille A.
Ahmed, Weli
Myers, Michael J.
Yacoub, Essa
Trevo-Clemmens, Brenden
Larsen, Bart
Laumann, Timothy O.
Nelson, Steven M.
Vizioli, Luca
Sylvester, Chad M.
Fair, Damien A.
author_facet Moser, Julia
Koirala, Sanju
Madison, Thomas
Labonte, Alyssa K.
Carrasco, Cristian Morales
Feczko, Eric
Moore, Lucille A.
Ahmed, Weli
Myers, Michael J.
Yacoub, Essa
Trevo-Clemmens, Brenden
Larsen, Bart
Laumann, Timothy O.
Nelson, Steven M.
Vizioli, Luca
Sylvester, Chad M.
Fair, Damien A.
author_sort Moser, Julia
collection PubMed
description The characterization of individual functional brain organization with Precision Functional Mapping has provided important insights in recent years in adults. However, little is known about the ontogeny of inter-individual differences in brain functional organization during human development, but precise characterization of systems organization during periods of high plasticity might be most influential towards discoveries promoting lifelong health. Collecting and analyzing precision fMRI data during early development has unique challenges and emphasizes the importance of novel methods to improve data acquisition, processing, and analysis strategies in infant samples. Here, we investigate the applicability of two such methods from adult MRI research, multi-echo (ME) data acquisition and thermal noise removal with Noise reduction with distribution corrected principal component analysis (NORDIC), in precision fMRI data from three newborn infants. Compared to an adult example subject, T2* relaxation times calculated from ME data in infants were longer and more variable across the brain, pointing towards ME acquisition being a promising tool for optimizing developmental fMRI. The application of thermal denoising via NORDIC increased tSNR and the overall strength of functional connections as well as the split-half reliability of functional connectivity matrices in infant ME data. While our findings related to NORDIC denoising are coherent with the adult literature and ME data acquisition showed high promise, its application in developmental samples needs further investigation. The present work reveals gaps in our understanding of the best techniques for developmental brain imaging and highlights the need for further developmentally-specific methodological advances and optimizations, towards precision functional imaging in infants.
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spelling pubmed-106349092023-11-13 Multi-echo Acquisition and Thermal Denoising Advances Infant Precision Functional Imaging Moser, Julia Koirala, Sanju Madison, Thomas Labonte, Alyssa K. Carrasco, Cristian Morales Feczko, Eric Moore, Lucille A. Ahmed, Weli Myers, Michael J. Yacoub, Essa Trevo-Clemmens, Brenden Larsen, Bart Laumann, Timothy O. Nelson, Steven M. Vizioli, Luca Sylvester, Chad M. Fair, Damien A. bioRxiv Article The characterization of individual functional brain organization with Precision Functional Mapping has provided important insights in recent years in adults. However, little is known about the ontogeny of inter-individual differences in brain functional organization during human development, but precise characterization of systems organization during periods of high plasticity might be most influential towards discoveries promoting lifelong health. Collecting and analyzing precision fMRI data during early development has unique challenges and emphasizes the importance of novel methods to improve data acquisition, processing, and analysis strategies in infant samples. Here, we investigate the applicability of two such methods from adult MRI research, multi-echo (ME) data acquisition and thermal noise removal with Noise reduction with distribution corrected principal component analysis (NORDIC), in precision fMRI data from three newborn infants. Compared to an adult example subject, T2* relaxation times calculated from ME data in infants were longer and more variable across the brain, pointing towards ME acquisition being a promising tool for optimizing developmental fMRI. The application of thermal denoising via NORDIC increased tSNR and the overall strength of functional connections as well as the split-half reliability of functional connectivity matrices in infant ME data. While our findings related to NORDIC denoising are coherent with the adult literature and ME data acquisition showed high promise, its application in developmental samples needs further investigation. The present work reveals gaps in our understanding of the best techniques for developmental brain imaging and highlights the need for further developmentally-specific methodological advances and optimizations, towards precision functional imaging in infants. Cold Spring Harbor Laboratory 2023-11-01 /pmc/articles/PMC10634909/ /pubmed/37961636 http://dx.doi.org/10.1101/2023.10.27.564416 Text en https://creativecommons.org/licenses/by-nc-nd/4.0/This work is licensed under a Creative Commons Attribution-NonCommercial-NoDerivatives 4.0 International License (https://creativecommons.org/licenses/by-nc-nd/4.0/) , which allows reusers to copy and distribute the material in any medium or format in unadapted form only, for noncommercial purposes only, and only so long as attribution is given to the creator.
spellingShingle Article
Moser, Julia
Koirala, Sanju
Madison, Thomas
Labonte, Alyssa K.
Carrasco, Cristian Morales
Feczko, Eric
Moore, Lucille A.
Ahmed, Weli
Myers, Michael J.
Yacoub, Essa
Trevo-Clemmens, Brenden
Larsen, Bart
Laumann, Timothy O.
Nelson, Steven M.
Vizioli, Luca
Sylvester, Chad M.
Fair, Damien A.
Multi-echo Acquisition and Thermal Denoising Advances Infant Precision Functional Imaging
title Multi-echo Acquisition and Thermal Denoising Advances Infant Precision Functional Imaging
title_full Multi-echo Acquisition and Thermal Denoising Advances Infant Precision Functional Imaging
title_fullStr Multi-echo Acquisition and Thermal Denoising Advances Infant Precision Functional Imaging
title_full_unstemmed Multi-echo Acquisition and Thermal Denoising Advances Infant Precision Functional Imaging
title_short Multi-echo Acquisition and Thermal Denoising Advances Infant Precision Functional Imaging
title_sort multi-echo acquisition and thermal denoising advances infant precision functional imaging
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10634909/
https://www.ncbi.nlm.nih.gov/pubmed/37961636
http://dx.doi.org/10.1101/2023.10.27.564416
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