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3D MERMAID:用于亚毫米、多壳层和高效信噪比扩散成像的3D多激发增强恢复运动伪影不敏感扩散技术

3D MERMAID: 3D Multi-shot enhanced recovery motion artifact insensitive diffusion for submillimeter, multi-shell, and SNR-efficient diffusion imaging.

作者信息

Feizollah Sajjad, Tardif Christine L

机构信息

Department of Neurology and Neurosurgery, Faculty of Medicine and Health Sciences, McGill University, Montreal, Quebec, Canada.

McConnell Brain Imaging Centre, Montreal Neurological Institute, McGill University, Montreal, Quebec, Canada.

出版信息

Magn Reson Med. 2025 Jun;93(6):2311-2330. doi: 10.1002/mrm.30436. Epub 2025 Mar 4.

Abstract

PURPOSE

To enhance SNR per unit time of diffusion MRI to enable high spatial resolution and extensive q-sampling in a feasible scan time on clinical scanners.

METHODS

3D multi-shot enhanced recovery motion-insensitive diffusion (MERMAID) consists of a whole brain nonselective 3D multi-shot spin-echo sequence with an inversion pulse immediately before the excitation pulse to enhance the recovery of longitudinal magnetization. The excitation flip angle is reduced to the Ernst angle. The sequence includes a trajectory using radially batched internal navigator echoes (TURBINE) readout, where a 3D projection of the FOV is acquired at a different radial angle in every shot. An image-based phase-correction method combined with compressed sensing image reconstruction was developed to correct phase errors between shots. The performance of the 3D MERMAID sequence was investigated using Bloch simulations as well as phantom and human scans at 3 T and then compared to a typical multi-slice 2D spin-echo sequence.

RESULTS

Improvements in SNR per unit time of 70%-240% were observed in phantom and human scans when using 3D MERMAID compared to a single-slice 2D spin-echo sequence. This SNR per unit time improvement allowed scans to be acquired at a nominal isotropic resolution of 0.74 mm and a total of 112 directions across four shells (b = 150, 300, 1000, 2000 s/mm) in 37 min on a clinical scanner.

CONCLUSION

The 3D MERMAID sequence was shown to significantly improve SNR per unit time compared to multi-slice 2D and 3D diffusion sequences. This SNR improvement allows for shorter scan times and higher spatial and angular resolutions on clinical scanners.

摘要

目的

提高扩散磁共振成像(MRI)每单位时间的信噪比(SNR),以便在临床扫描仪上的可行扫描时间内实现高空间分辨率和广泛的q采样。

方法

三维多次激发增强恢复运动不敏感扩散(MERMAID)由一个全脑非选择性三维多次激发自旋回波序列组成,在激发脉冲之前有一个反转脉冲,以增强纵向磁化的恢复。激发翻转角减小到 Ernst 角。该序列包括使用径向分批内部导航回波(TURBINE)读出的轨迹,其中在每次激发时以不同的径向角度获取视野(FOV)的三维投影。开发了一种基于图像的相位校正方法并结合压缩感知图像重建来校正各次激发之间的相位误差。使用 Bloch 模拟以及在 3T 下的体模和人体扫描研究了三维 MERMAID 序列的性能,然后与典型的多层二维自旋回波序列进行比较。

结果

与单层二维自旋回波序列相比,使用三维 MERMAID 时在体模和人体扫描中观察到每单位时间 SNR 提高了 70%-240%。这种每单位时间 SNR 的提高使得在临床扫描仪上能够在 37 分钟内以 0.74 毫米的标称各向同性分辨率和跨越四个壳层(b = 150、300、1000、2000 s/mm²)总共 112 个方向进行扫描。

结论

与多层二维和三维扩散序列相比,三维 MERMAID 序列显示出能显著提高每单位时间的 SNR。这种 SNR 的提高允许在临床扫描仪上缩短扫描时间并提高空间和角度分辨率。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/77da/11971498/2de707e78f45/MRM-93-2311-g009.jpg

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