Physikalisch-Technische Bundesanstalt (PTB), Braunschweig und Berlin, Germany.
Center for Stroke Research Berlin, Charité-Universitätsmedizin, Berlin, Germany.
Magn Reson Med. 2022 Nov;88(5):1978-1993. doi: 10.1002/mrm.29369. Epub 2022 Jul 30.
To simultaneously acquire spectroscopic signals from two MRS voxels using a multi-banded 2 spin-echo, full-intensity acquired localized (2SPECIAL) sequence, and to decompose the signal to their respective regions by a novel voxel-GRAPPA (vGRAPPA) decomposition approach for in vivo brain applications at 7 T.
A wideband, uniform rate, smooth truncation (WURST) multi-banded pulse was incorporated into SPECIAL to implement 2SPECIAL for simultaneous multi-voxel spectroscopy (sMVS). To decompose the acquired data, the voxel-GRAPPA decomposition algorithm is introduced, and its performance is compared to the SENSE-based decomposition. Furthermore, the limitations of two-voxel excitation concerning the multi-banded adiabatic inversion pulse, as well as of the combined B shim and B adjustments, are evaluated.
It was successfully shown that the 2SPECIAL sequence enables sMVS without a significant loss in SNR while reducing the total scan time by 21.6% compared to two consecutive acquisitions. The proposed voxel-GRAPPA algorithm properly reassigns the signal components to their respective origin region and shows no significant differences to the well-established SENSE-based algorithm in terms of leakage (both <10%) or Cramér-Rao lower bounds (CRLB) for in vivo applications, while not requiring the acquisition of additional sensitivity maps and thus decreasing motion sensitivity.
The use of 2SPECIAL in combination with the novel voxel-GRAPPA decomposition technique allows a substantial reduction of measurement time compared to the consecutive acquisition of two single voxels without a significant decrease in spectral quality or metabolite quantification accuracy and thus provides a new option for multiple-voxel applications.
使用多带 2 自旋回波、全强度采集局部化(2SPECIAL)序列,从两个 MRS 体素中同时获取光谱信号,并通过一种新的体素-GRAPPA(vGRAPPA)分解方法,将信号分解到各自的区域,用于 7T 下的活体脑应用。
在 SPECIAL 中加入宽带、均匀速率、平滑截断(WURST)多带脉冲,实现用于同时多体素波谱(sMVS)的 2SPECIAL。为了解析采集的数据,引入了体素-GRAPPA 分解算法,并将其性能与基于 SENSE 的分解进行了比较。此外,还评估了双体素激发对多带绝热反转脉冲的限制,以及组合 B 调谐和 B 校正的限制。
成功表明 2SPECIAL 序列可实现 sMVS,而 SNR 无明显损失,与两次连续采集相比,总扫描时间减少了 21.6%。所提出的体素-GRAPPA 算法可正确地将信号分量重新分配到各自的原点区域,并且在漏泄(均 <10%)或活体应用的克拉默-劳下限(CRLB)方面与成熟的基于 SENSE 的算法没有显著差异,而无需采集额外的灵敏度图,从而降低运动敏感性。
与连续采集两个单个体素相比,2SPECIAL 与新型体素-GRAPPA 分解技术结合使用,可显著减少测量时间,而不会显著降低光谱质量或代谢物定量准确性,从而为多体素应用提供了一种新的选择。