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用于7T氢磁共振波谱成像的密度加权同心环k空间轨迹

Density-weighted concentric rings k-space trajectory for H magnetic resonance spectroscopic imaging at 7 T.

作者信息

Chiew Mark, Jiang Wenwen, Burns Brian, Larson Peder, Steel Adam, Jezzard Peter, Albert Thomas M, Emir Uzay E

机构信息

Wellcome Centre for Integrative Neuroimaging, FMRIB Division, Nuffield Department of Clinical Neurosciences, University of Oxford, John Radcliffe Hospital, Oxford, UK.

Department of Radiology and Biomedical Imaging, University of California, San Francisco, CA, USA.

出版信息

NMR Biomed. 2018 Jan;31(1). doi: 10.1002/nbm.3838. Epub 2017 Oct 18.

Abstract

It has been shown that density-weighted (DW) k-space sampling with spiral and conventional phase encoding trajectories reduces spatial side lobes in magnetic resonance spectroscopic imaging (MRSI). In this study, we propose a new concentric ring trajectory (CRT) for DW-MRSI that samples k-space with a density that is proportional to a spatial, isotropic Hanning window. The properties of two different DW-CRTs were compared against a radially equidistant (RE) CRT and an echo-planar spectroscopic imaging (EPSI) trajectory in simulations, phantoms and in vivo experiments. These experiments, conducted at 7 T with a fixed nominal voxel size and matched acquisition times, revealed that the two DW-CRT designs improved the shape of the spatial response function by suppressing side lobes, also resulting in improved signal-to-noise ratio (SNR). High-quality spectra were acquired for all trajectories from a specific region of interest in the motor cortex with an in-plane resolution of 7.5 × 7.5 mm in 8 min 3 s. Due to hardware limitations, high-spatial-resolution spectra with an in-plane resolution of 5 × 5 mm and an acquisition time of 12 min 48 s were acquired only for the RE and one of the DW-CRT trajectories and not for EPSI. For all phantom and in vivo experiments, DW-CRTs resulted in the highest SNR. The achieved in vivo spectral quality of the DW-CRT method allowed for reliable metabolic mapping of eight metabolites including N-acetylaspartylglutamate, γ-aminobutyric acid and glutathione with Cramér-Rao lower bounds below 50%, using an LCModel analysis. Finally, high-quality metabolic mapping of a whole brain slice using DW-CRT was achieved with a high in-plane resolution of 5 × 5 mm in a healthy subject. These findings demonstrate that our DW-CRT MRSI technique can perform robustly on MRI systems and within a clinically feasible acquisition time.

摘要

研究表明,采用螺旋和传统相位编码轨迹的密度加权(DW)k空间采样可减少磁共振波谱成像(MRSI)中的空间旁瓣。在本研究中,我们提出了一种用于DW-MRSI的新型同心环轨迹(CRT),该轨迹以与空间各向同性汉宁窗成比例的密度对k空间进行采样。在模拟、体模和体内实验中,将两种不同的DW-CRT的特性与径向等距(RE)CRT和回波平面波谱成像(EPSI)轨迹进行了比较。这些实验在7 T下进行,具有固定的标称体素大小和匹配的采集时间,结果表明,两种DW-CRT设计通过抑制旁瓣改善了空间响应函数的形状,同时也提高了信噪比(SNR)。在8分3秒内,从运动皮层的特定感兴趣区域以7.5×7.5 mm的面内分辨率对所有轨迹采集了高质量光谱。由于硬件限制,仅对RE和其中一条DW-CRT轨迹采集了面内分辨率为5×5 mm、采集时间为12分48秒的高空间分辨率光谱,而EPSI未采集到。对于所有体模和体内实验,DW-CRT产生了最高的SNR。利用LCModel分析,DW-CRT方法在体内实现的光谱质量允许对包括N-乙酰天门冬氨酰谷氨酸、γ-氨基丁酸和谷胱甘肽在内的八种代谢物进行可靠的代谢图谱绘制,克莱姆-拉奥下限低于50%。最后,在一名健康受试者中,使用DW-CRT以5×5 mm的高面内分辨率实现了全脑切片的高质量代谢图谱绘制。这些发现表明,我们的DW-CRT MRSI技术能够在MRI系统上稳健运行,并在临床可行的采集时间内完成。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/44a0/5969060/c87f87e81e05/NBM-31-na-g001.jpg

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