期刊论文详细信息
NeuroImage
Variable flip angle echo planar time-resolved imaging (vFA-EPTI) for fast high-resolution gradient echo myelin water imaging
Kwok-Shing Chan1  Fuyixue Wang2  Berkin Bilgic3  Zijing Dong4  Kawin Setsompop4  Timothy G. Reese4  José P. Marques5 
[1] Corresponding author.;Department of Electrical Engineering and Computer Science, MIT, Cambridge, Massachusetts, USA;Harvard-MIT Health Sciences and Technology, MIT, Cambridge, Massachusetts, USA;Athinoula A. Martinos Center for Biomedical Imaging, Massachusetts General Hospital, Charlestown, Massachusetts, USA;Donders Institute for Brain, Cognition and Behaviour, Radboud University, Nijmegen, Netherlands;
关键词: Myelin water imaging;    Fast imaging;    High resolution;    Multi-compartment;    Myeloarchitecture;    Cortical layers;   
DOI  :  
来源: DOAJ
【 摘 要 】

Myelin water imaging techniques based on multi-compartment relaxometry have been developed as an important tool to measure myelin concentration in vivo, but are limited by the long scan time of multi-contrast multi-echo acquisition. In this work, a fast imaging technique, termed variable flip angle Echo Planar Time-Resolved Imaging (vFA-EPTI), is developed to acquire multi-echo and multi-flip-angle gradient-echo data with significantly reduced acquisition time, providing rich information for multi-compartment analysis of gradient-echo myelin water imaging (GRE-MWI). The proposed vFA-EPTI method achieved 26 folds acceleration with good accuracy by utilizing an efficient continuous readout, optimized spatiotemporal encoding across echoes and flip angles, as well as a joint subspace reconstruction. An approach to estimate off-resonance field changes between different flip-angle acquisitions was also developed to ensure high-quality joint reconstruction across flip angles. The accuracy of myelin water fraction (MWF) estimate under high acceleration was first validated by a retrospective undersampling experiment using a lengthy fully-sampled data as reference. Prospective experiments were then performed where whole-brain MWF and multi-compartment quantitative maps were obtained in 5 min at 1.5 mm isotropic resolution and 24 min at 1 mm isotropic resolution at 3T. Additionally, ultra-high resolution data at 600 µm isotropic resolution were acquired at 7T, which show detailed structures within the cortex such as the line of Gennari, demonstrating the ability of the proposed method for submillimeter GRE-MWI that can be used to study cortical myeloarchitecture in vivo.

【 授权许可】

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