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Optimization of Gradient-Echo Echo-Planar Imaging for T(2)* Contrast in the Brain at 0.5 T

Gradient-recalled echo (GRE) echo-planar imaging (EPI) is an efficient MRI pulse sequence that is commonly used for several enticing applications, including functional MRI (fMRI), susceptibility-weighted imaging (SWI), and proton resonance frequency (PRF) thermometry. These applications are typicall...

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Autores principales: Halder, Arjama, Harris, Chad T., Wiens, Curtis N., Soddu, Andrea, Chronik, Blaine A.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10610880/
https://www.ncbi.nlm.nih.gov/pubmed/37896521
http://dx.doi.org/10.3390/s23208428
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author Halder, Arjama
Harris, Chad T.
Wiens, Curtis N.
Soddu, Andrea
Chronik, Blaine A.
author_facet Halder, Arjama
Harris, Chad T.
Wiens, Curtis N.
Soddu, Andrea
Chronik, Blaine A.
author_sort Halder, Arjama
collection PubMed
description Gradient-recalled echo (GRE) echo-planar imaging (EPI) is an efficient MRI pulse sequence that is commonly used for several enticing applications, including functional MRI (fMRI), susceptibility-weighted imaging (SWI), and proton resonance frequency (PRF) thermometry. These applications are typically not performed in the mid-field (<1 T) as longer T(2)* and lower polarization present significant challenges. However, recent developments of mid-field scanners equipped with high-performance gradient sets offer the possibility to re-evaluate the feasibility of these applications. The paper introduces a metric “T(2)* contrast efficiency” for this evaluation, which minimizes dead time in the EPI sequence while maximizing T(2)* contrast so that the temporal and pseudo signal-to-noise ratios (SNRs) can be attained, which could be used to quantify experimental parameters for future fMRI experiments in the mid-field. To guide the optimization, T(2)* measurements of the cortical gray matter are conducted, focusing on specific regions of interest (ROIs). Temporal and pseudo SNR are calculated with the measured time-series EPI data to observe the echo times at which the maximum T(2)* contrast efficiency is achieved. T(2)* for a specific cortical ROI is reported at 0.5 T. The results suggest the optimized echo time for the EPI protocols is shorter than the effective T(2)* of that region. The effective reduction of dead time prior to the echo train is feasible with an optimized EPI protocol, which will increase the overall scan efficiency for several EPI-based applications at 0.5 T.
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spelling pubmed-106108802023-10-28 Optimization of Gradient-Echo Echo-Planar Imaging for T(2)* Contrast in the Brain at 0.5 T Halder, Arjama Harris, Chad T. Wiens, Curtis N. Soddu, Andrea Chronik, Blaine A. Sensors (Basel) Communication Gradient-recalled echo (GRE) echo-planar imaging (EPI) is an efficient MRI pulse sequence that is commonly used for several enticing applications, including functional MRI (fMRI), susceptibility-weighted imaging (SWI), and proton resonance frequency (PRF) thermometry. These applications are typically not performed in the mid-field (<1 T) as longer T(2)* and lower polarization present significant challenges. However, recent developments of mid-field scanners equipped with high-performance gradient sets offer the possibility to re-evaluate the feasibility of these applications. The paper introduces a metric “T(2)* contrast efficiency” for this evaluation, which minimizes dead time in the EPI sequence while maximizing T(2)* contrast so that the temporal and pseudo signal-to-noise ratios (SNRs) can be attained, which could be used to quantify experimental parameters for future fMRI experiments in the mid-field. To guide the optimization, T(2)* measurements of the cortical gray matter are conducted, focusing on specific regions of interest (ROIs). Temporal and pseudo SNR are calculated with the measured time-series EPI data to observe the echo times at which the maximum T(2)* contrast efficiency is achieved. T(2)* for a specific cortical ROI is reported at 0.5 T. The results suggest the optimized echo time for the EPI protocols is shorter than the effective T(2)* of that region. The effective reduction of dead time prior to the echo train is feasible with an optimized EPI protocol, which will increase the overall scan efficiency for several EPI-based applications at 0.5 T. MDPI 2023-10-12 /pmc/articles/PMC10610880/ /pubmed/37896521 http://dx.doi.org/10.3390/s23208428 Text en © 2023 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Communication
Halder, Arjama
Harris, Chad T.
Wiens, Curtis N.
Soddu, Andrea
Chronik, Blaine A.
Optimization of Gradient-Echo Echo-Planar Imaging for T(2)* Contrast in the Brain at 0.5 T
title Optimization of Gradient-Echo Echo-Planar Imaging for T(2)* Contrast in the Brain at 0.5 T
title_full Optimization of Gradient-Echo Echo-Planar Imaging for T(2)* Contrast in the Brain at 0.5 T
title_fullStr Optimization of Gradient-Echo Echo-Planar Imaging for T(2)* Contrast in the Brain at 0.5 T
title_full_unstemmed Optimization of Gradient-Echo Echo-Planar Imaging for T(2)* Contrast in the Brain at 0.5 T
title_short Optimization of Gradient-Echo Echo-Planar Imaging for T(2)* Contrast in the Brain at 0.5 T
title_sort optimization of gradient-echo echo-planar imaging for t(2)* contrast in the brain at 0.5 t
topic Communication
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10610880/
https://www.ncbi.nlm.nih.gov/pubmed/37896521
http://dx.doi.org/10.3390/s23208428
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