3D MR Fingerprinting for Dynamic Contrast-Enhanced Imaging of Whole Mouse Brain

Fuente: arXiv
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Main Authors: Zhu, Yuran, Wang, Guanhua, Gu, Yuning, Zhao, Walter, Lu, Jiahao, Zhu, Junqing, MacAskill, Christina J., Dupuis, Andrew, Griswold, Mark A., Ma, Dan, Flask, Chris A., Yu, Xin
Format: Preprint
Published: 2024
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author Zhu, Yuran
Wang, Guanhua
Gu, Yuning
Zhao, Walter
Lu, Jiahao
Zhu, Junqing
MacAskill, Christina J.
Dupuis, Andrew
Griswold, Mark A.
Ma, Dan
Flask, Chris A.
Yu, Xin
author_facet Zhu, Yuran
Wang, Guanhua
Gu, Yuning
Zhao, Walter
Lu, Jiahao
Zhu, Junqing
MacAskill, Christina J.
Dupuis, Andrew
Griswold, Mark A.
Ma, Dan
Flask, Chris A.
Yu, Xin
contents Quantitative MRI enables direct quantification of contrast agent concentrations in contrast-enhanced scans. However, the lengthy scan times required by conventional methods are inadequate for tracking contrast agent transport dynamically in mouse brain. We developed a 3D MR fingerprinting (MRF) method for simultaneous T1 and T2 mapping across the whole mouse brain with 4.3-min temporal resolution. We designed a 3D MRF sequence with variable acquisition segment lengths and magnetization preparations on a 9.4T preclinical MRI scanner. Model-based reconstruction approaches were employed to improve the accuracy and speed of MRF acquisition. The method's accuracy for T1 and T2 measurements was validated in vitro, while its repeatability of T1 and T2 measurements was evaluated in vivo (n=3). The utility of the 3D MRF sequence for dynamic tracking of intracisternally infused Gd-DTPA in the whole mouse brain was demonstrated (n=5). Phantom studies confirmed accurate T1 and T2 measurements by 3D MRF with an undersampling factor up to 48. Dynamic contrast-enhanced (DCE) MRF scans achieved a spatial resolution of 192 x 192 x 500 um3 and a temporal resolution of 4.3 min, allowing for the analysis and comparison of dynamic changes in concentration and transport kinetics of intracisternally infused Gd-DTPA across brain regions. The sequence also enabled highly repeatable, high-resolution T1 and T2 mapping of the whole mouse brain (192 x 192 x 250 um3) in 30 min. We present the first dynamic and multi-parametric approach for quantitatively tracking contrast agent transport in the mouse brain using 3D MRF.
format Preprint
id arxiv_https___arxiv_org_abs_2405_00513
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle 3D MR Fingerprinting for Dynamic Contrast-Enhanced Imaging of Whole Mouse Brain
Zhu, Yuran
Wang, Guanhua
Gu, Yuning
Zhao, Walter
Lu, Jiahao
Zhu, Junqing
MacAskill, Christina J.
Dupuis, Andrew
Griswold, Mark A.
Ma, Dan
Flask, Chris A.
Yu, Xin
Quantitative Methods
Quantitative MRI enables direct quantification of contrast agent concentrations in contrast-enhanced scans. However, the lengthy scan times required by conventional methods are inadequate for tracking contrast agent transport dynamically in mouse brain. We developed a 3D MR fingerprinting (MRF) method for simultaneous T1 and T2 mapping across the whole mouse brain with 4.3-min temporal resolution. We designed a 3D MRF sequence with variable acquisition segment lengths and magnetization preparations on a 9.4T preclinical MRI scanner. Model-based reconstruction approaches were employed to improve the accuracy and speed of MRF acquisition. The method's accuracy for T1 and T2 measurements was validated in vitro, while its repeatability of T1 and T2 measurements was evaluated in vivo (n=3). The utility of the 3D MRF sequence for dynamic tracking of intracisternally infused Gd-DTPA in the whole mouse brain was demonstrated (n=5). Phantom studies confirmed accurate T1 and T2 measurements by 3D MRF with an undersampling factor up to 48. Dynamic contrast-enhanced (DCE) MRF scans achieved a spatial resolution of 192 x 192 x 500 um3 and a temporal resolution of 4.3 min, allowing for the analysis and comparison of dynamic changes in concentration and transport kinetics of intracisternally infused Gd-DTPA across brain regions. The sequence also enabled highly repeatable, high-resolution T1 and T2 mapping of the whole mouse brain (192 x 192 x 250 um3) in 30 min. We present the first dynamic and multi-parametric approach for quantitatively tracking contrast agent transport in the mouse brain using 3D MRF.
title 3D MR Fingerprinting for Dynamic Contrast-Enhanced Imaging of Whole Mouse Brain
topic Quantitative Methods
url https://arxiv.org/abs/2405.00513