Widmaier Mark, Kaiser Antonia, Baup Salome, Wenz Daniel, Pierzchala Katarzyna, Xiao Ying, Huang Zhiwei, Jiang Yun, Xin Lijing
CIBM Center for Biomedical Imaging, Switzerland.
Animal Imaging and Technology, Ecole Polytechnique Federale de Lausanne (EPFL), Lausanne, Switzerland.
ArXiv. 2024 Jun 26:arXiv:2406.18426v1.
Phosphorus Magnetic Resonance Spectroscopy (P MRS) enables non-invasive assessment of energy metabolism, yet its application is hindered by sensitivity limitations. To overcome this, often high magnetic fields are used, leading to challenges such as spatial inhomogeneity and therefore the need for accurate flip angle determination in accelerated acquisitions with short repetition times . In response to these challenges, we propose a novel short and look-up table-based Double-Angle Method for fast 3D P mapping (fDAM).
Our method incorporates 3D weighted stack of spiral gradient echo acquisitions and a frequency-selective pulse to enable efficient mapping based on the phosphocreatine signal at 7T. Protocols were optimised using simulations and validated through phantom experiments. The method was validated in phantom experiments and skeletal muscle applications using a birdcage H/P volume coil.
The results of fDAM were compared to the classical DAM (cDAM). A good correlation (r=0.94) was obtained between the two maps. A 3D P mapping in the human calf muscle was achieved in about 10 min using a birdcage volume coil, with a 20% extended coverage relative to that of the cDAM (24 min). fDAM also enabled the first full brain coverage P 3D mapping in approx. 10 min using a 1 Tx/ 32 Rx coil.
fDAM is an efficient method for P 3D mapping, showing promise for future applications in rapid P MRSI.
磷磁共振波谱(P MRS)能够对能量代谢进行无创评估,但其应用受到灵敏度限制的阻碍。为克服这一问题,通常会使用高磁场,这带来了诸如空间不均匀性等挑战,因此在短重复时间的加速采集中需要精确确定翻转角。针对这些挑战,我们提出了一种基于查找表的新型短双角度方法用于快速三维磷谱成像(fDAM)。
我们的方法结合了三维加权螺旋梯度回波采集和频率选择脉冲,以基于7T场强下的磷酸肌酸信号实现高效磷谱成像。通过模拟对方案进行了优化,并通过体模实验进行了验证。该方法在体模实验和使用鸟笼式氢/磷体线圈的骨骼肌应用中得到了验证。
将fDAM的结果与经典双角度方法(cDAM)进行了比较。两张磷谱图之间获得了良好的相关性(r = 0.94)。使用鸟笼式体线圈,在约10分钟内实现了人体小腿肌肉的三维磷谱成像,相对于cDAM(24分钟),覆盖范围扩大了20%。fDAM还使用1Tx/32Rx线圈在约10分钟内实现了首次全脑覆盖的三维磷谱成像。
fDAM是一种用于三维磷谱成像的高效方法,在快速磷磁共振波谱成像(P MRSI)的未来应用中显示出前景。