Boer Vincent O, Andersen Mads, Lind Anna, Lee Nam Gyun, Marsman Anouk, Petersen Esben T
Danish Research Centre for Magnetic Resonance, Centre for Functional and Diagnostic Imaging and Research, Copenhagen University Hospital Hvidovre, Denmark.
Philips Healthcare, Copenhagen, Denmark.
Magn Reson Med. 2020 Sep;84(3):1101-1112. doi: 10.1002/mrm.28202. Epub 2020 Feb 14.
To interleave global and local higher order shimming for single voxel MRS. Single voxel MR spectroscopy requires optimization of the B field homogeneity in the region of the voxel to obtain a narrow linewidth and provide high data quality. However, the optimization of local higher order fields on a localized MRS voxel typically leads to large field offsets outside that volume. This compromises interleaved MR sequence elements that benefit from global field homogeneity such as water suppression, interleaved MRS-fMRI, and MR motion correction.
A shimming algorithm was developed to optimize the MRS voxel homogeneity and the whole brain homogeneity for interleaved sequence elements, using static higher order shims and dynamic linear terms (HOS-DLT). Shimming performance was evaluated using 6 brain regions and 10 subjects. Furthermore, the benefits of HOS-DLT was demonstrated for water suppression, MRS-fMRI, and motion corrected MRS using fat-navigators.
The HOS-DLT algorithm was shown to improve the whole brain homogeneity compared to an MRS voxel-based shim, without compromising the MRS voxel homogeneity. Improved water suppression over the brain, reduced image distortions in MRS-fMRI, and improved quality of motion navigators were demonstrated using the HOS-DLT method.
HOS-DLT shimming allowed for both local and global field homogeneity, providing excellent MR spectroscopy data quality, as well as good field homogeneity for interleaved sequence elements, even without the need for dynamic higher order shimming capabilities.
为单体素磁共振波谱(MRS)交错进行全局和局部高阶匀场。单体素磁共振波谱需要优化体素区域内的磁场均匀性,以获得较窄的线宽并提供高质量的数据。然而,对局部MRS体素进行局部高阶场的优化通常会导致该体积之外出现较大的场偏移。这会影响到诸如水抑制、交错式MRS-功能磁共振成像(fMRI)以及磁共振运动校正等受益于全局场均匀性的交错式磁共振序列元件。
开发了一种匀场算法,使用静态高阶匀场线圈和动态线性项(HOS-DLT)来优化交错序列元件的MRS体素均匀性和全脑均匀性。使用6个脑区和10名受试者评估了匀场性能。此外,还展示了HOS-DLT在水抑制、MRS-fMRI以及使用脂肪导航器进行运动校正的MRS方面的优势。
与基于MRS体素的匀场相比,HOS-DLT算法显示出可改善全脑均匀性,同时不影响MRS体素均匀性。使用HOS-DLT方法展示了全脑范围内改善的水抑制效果、MRS-fMRI中减少的图像失真以及运动导航器质量的提高。
HOS-DLT匀场实现了局部和全局场均匀性,既提供了出色的磁共振波谱数据质量,也为交错序列元件提供了良好的场均匀性,甚至无需动态高阶匀场功能。