Institute of Clinical Physiology, National Council of Research, via G. Moruzzi 1, 56124 Pisa, Italy.
Med Phys. 2010 Oct;37(10):5361-9. doi: 10.1118/1.3491437.
Hyperpolarized carbon-13 magnetic resonance spectroscopy is a novel and powerful tool for exploring the metabolic state of tissue, but a number of technological problems still limit this technology and need innovative solutions. In particular, the low molar concentration of derivate metabolites give rise to low signal-to-noise ratio (SNR), which makes the design and development of dedicated RF coils a task of fundamental importance. In this article, the authors describe the simulation and the design of a dedicated 13C surface coil for cardiac metabolism assessment in pig models.
A SNR model for a circular loop is presented and applied to the design of a 13C coil which guarantees the desired field-of-view and provides high SNR with a good penetration in deep sample regions. The coil resistance was calculated from Ohm's law and the magnetic field pattern was calculated using Biot-Savart law, while the sample induced resistance was calculated using a numerical finite-difference time-domain algorithm. Successively, a prototype of the coil was built and tested on the workbench and by acquisition of MR data.
The comparison of SNR-vs-depth profiles between the theoretical SNR model and the experimental SNR extracted from the phantom chemical shift image (CSI) showed the accuracy of the authors' model. Moreover, the authors demonstrated the use of the coil for the acquisition of a CSI of a hyperpolarized [1-13C] pyruvate phantom.
The results demonstrated the design trade-offs to successfully design a dedicated coil for cardiac imaging in the pig with hyperpolarized 13C by developing a SNR model which allows the prediction of the coil performance. This approach can be employed for deriving SNR formulations for coil with more complex geometries.
¹³C 磁共振波谱是一种用于探索组织代谢状态的新型强大工具,但仍存在许多技术问题限制了该技术的发展,需要创新的解决方案。特别是,衍生代谢物的低摩尔浓度导致低信噪比(SNR),这使得专用射频线圈的设计和开发成为一项具有重要意义的任务。本文作者描述了一种用于猪模型心脏代谢评估的专用 ¹³C 表面线圈的模拟和设计。
提出了一种圆形线圈的 SNR 模型,并将其应用于设计一种 ¹³C 线圈,该线圈保证了所需的视野,并在深部样品区域提供高 SNR 和良好的穿透性。根据欧姆定律计算线圈电阻,根据毕奥-萨伐尔定律计算磁场模式,同时使用数值有限差分时域算法计算样品感应电阻。随后,在工作台上和通过采集磁共振数据对线圈原型进行了构建和测试。
理论 SNR 模型与从幻影化学位移图像(CSI)中提取的实验 SNR 的 SNR-vs-深度分布的比较表明了作者模型的准确性。此外,作者还展示了该线圈在采集极化[¹³C]丙酮酸盐幻影 CSI 中的应用。
结果证明,通过开发一种允许预测线圈性能的 SNR 模型,可以成功地为猪的极化 ¹³C 心脏成像设计专用线圈。这种方法可用于推导具有更复杂几何形状的线圈的 SNR 公式。