3D MR Fingerprinting for Dynamic Contrast-Enhanced Imaging of Whole Mouse Brain
Yuran Zhu, Guanhua Wang, Yuning Gu, Walter Zhao, Jiahao Lu, Junqing, Zhu, Christina J. MacAskill, Andrew Dupuis, Mark A. Griswold, Dan Ma, Chris, A. Flask, Xin Yu

TL;DR
This paper introduces a 3D MR fingerprinting method that enables rapid, high-resolution, quantitative imaging of contrast agent transport in the whole mouse brain, facilitating dynamic studies with improved speed and accuracy.
Contribution
The study presents the first dynamic 3D MRF technique for whole mouse brain imaging, combining rapid acquisition, model-based reconstruction, and quantitative contrast agent tracking.
Findings
Achieved 4.3-minute temporal resolution for whole brain imaging.
Validated accuracy and repeatability of T1 and T2 measurements.
Demonstrated dynamic tracking of contrast agent transport in vivo.
Abstract
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…
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Taxonomy
MethodsSPEED: Separable Pyramidal Pooling EncodEr-Decoder for Real-Time Monocular Depth Estimation on Low-Resource Settings
