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使用层叠回波平面成像的磁共振指纹成像实现高效的全脑覆盖。

Time efficient whole-brain coverage with MR Fingerprinting using slice-interleaved echo-planar-imaging.

机构信息

Computer Assisted Clinical Medicine, University Medical Center Mannheim, Heidelberg University, Mannheim, Germany.

Magnetic Resonance Image Core Facility, Institut d'Investigacions Biomèdiques August Pi i Sunyer (IDIBAPS), Barcelona, Spain.

出版信息

Sci Rep. 2018 Apr 27;8(1):6667. doi: 10.1038/s41598-018-24920-z.

Abstract

Magnetic resonance fingerprinting (MRF) is a promising method for fast simultaneous quantification of multiple tissue parameters. The objective of this study is to improve the coverage of MRF based on echo-planar imaging (MRF-EPI) by using a slice-interleaved acquisition scheme. For this, the MRF-EPI is modified to acquire several slices in a randomized interleaved manner, increasing the effective repetition time of the spoiled gradient echo readout acquisition in each slice. Per-slice matching of the signal-trace to a precomputed dictionary allows the generation of T and T* maps with integrated B correction. Subsequent compensation for the coil sensitivity profile and normalization to the cerebrospinal fluid additionally allows for quantitative proton density (PD) mapping. Numerical simulations are performed to optimize the number of interleaved slices. Quantification accuracy is validated in phantom scans and feasibility is demonstrated in-vivo. Numerical simulations suggest the acquisition of four slices as a trade-off between quantification precision and scan-time. Phantom results indicate good agreement with reference measurements (Difference T: -2.4 ± 1.1%, T*: -0.5 ± 2.5%, PD: -0.5 ± 7.2%). In-vivo whole-brain coverage of T, T* and PD with 32 slices was acquired within 3:36 minutes, resulting in parameter maps of high visual quality and comparable performance with single-slice MRF-EPI at 4-fold scan-time reduction.

摘要

磁共振指纹成像(MRF)是一种快速同时定量多种组织参数的有前途的方法。本研究的目的是通过使用切片交错采集方案来提高基于回波平面成像(MRF-EPI)的 MRF 的覆盖范围。为此,对 MRF-EPI 进行了修改,以便以随机交错的方式采集多个切片,从而增加每个切片中被破坏的梯度回波读出采集的有效重复时间。每个切片的信号迹线与预计算的字典进行匹配,允许生成具有集成 B 校正的 T 和 T图。随后对线圈灵敏度分布进行补偿并归一化为脑脊液,还可以进行定量质子密度(PD)映射。进行数值模拟以优化交错切片的数量。在体模扫描中验证定量准确性,并证明在体内的可行性。数值模拟表明,采集四个切片是在定量精度和扫描时间之间的折衷。体模结果表明与参考测量值具有良好的一致性(差异 T:-2.4±1.1%,T:-0.5±2.5%,PD:-0.5±7.2%)。在 3:36 分钟内采集了 32 个切片的全脑 T、T*和 PD 覆盖范围,生成了具有高视觉质量的参数图,并在扫描时间减少 4 倍的情况下与单切片 MRF-EPI 具有可比的性能。

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