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bioRxiv · 10.1101/2021.05.06.443040

Ultrafast high-resolution multi-parametric brain MRI using 3D Echo Planar Time-resolved Imaging

Abstract

Multi-parametric quantitative MRI has shown great potential to improve the sensitivity and specificity of clinical diagnosis and to enhance our understanding of complex brain processes, but suffers from long scan time especially at high spatial resolution. To address this long-standing challenge, we introduce a novel approach, termed 3D Echo Planar Time-resolved Imaging (3D-EPTI), which significantly increases the acceleration capacity of MRI sampling, and provides high acquisition efficiency for multi-parametric MRI. This is achieved by exploiting the spatiotemporal correlation of MRI data at multiple timescales through new encoding strategies within and between efficient continuous readouts. Specifically, an optimized spatiotemporal CAIPI encoding within the readouts combined with a radial-block sampling strategy across the readouts enables an acceleration rate of 800 folds in the k-t space. A subspace reconstruction was employed to resolve thousands of artifact-free high-quality multi-contrast images spaced at a time interval of ~1 ms. We have demonstrated the ability of 3D-EPTI to provide robust and repeatable whole-brain simultaneous T1, T2, T2*, PD and B1+ mapping at high isotropic resolution within minutes (e.g., 1-mm isotropic resolution in 3 minutes), and to enable submillimeter multi-parametric imaging to study detailed brain structures. HighlightsO_LIUltra-fast acquisition for 3D multi-parametric quantitative MRI. C_LIO_LISimultaneous T1 T2 T2* PD and B1+ mapping. C_LIO_LI3-minute scan at 1-mm isotropic resolution with whole-brain coverage. C_LIO_LIMulti-parametric mapping at 700-m isotropic resolution in 10 minutes. C_LIO_LIRepeatable quantification and cortical-depth analysis. C_LI

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BibTeXRIS

Wang, F., Dong, Z., Reese, T. G., Rosen, B., Wald, L. L., Setsompop, K.. 2021-05-07. Ultrafast high-resolution multi-parametric brain MRI using 3D Echo Planar Time-resolved Imaging. https://doi.org/10.1101/2021.05.06.443040

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