GE Global Research, Munich, Germany.
Magn Reson Med. 2012 Jul;68(1):8-16. doi: 10.1002/mrm.23212. Epub 2011 Nov 29.
Metabolic imaging with hyperpolarized [1-(13)C]pyruvate offers the unique opportunity for a minimally invasive detection of cellular metabolism. Efficient and robust acquisition and reconstruction techniques are required for capturing the wealth of information present for the limited duration of the hyperpolarized state (~1 min). In this study, the Dixon/IDEAL type of water-fat separation is expanded toward spectroscopic imaging of [1-(13) C]pyruvate and its down-stream metabolites. For this purpose, the spectral-spatial encoding is based on single-shot spiral image encoding and echo-time shifting in between excitations for the chemical-shift encoding. In addition, also a free-induction decay spectrum is acquired and the obtained chemical-shift prior knowledge is efficiently used in the reconstruction. The spectral-spatial reconstruction problem is found to efficiently separate into a chemical-shift inversion followed by a spatial reconstruction. The method is successfully demonstrated for dynamic, multislice [1-(13)C]pyruvate metabolic MR imaging in phantom and in vivo rat experiments.
利用超极化 [1-(13)C]丙酮酸进行代谢成像为细胞代谢的微创检测提供了独特的机会。为了在超极化状态(~1 分钟)的有限持续时间内捕获丰富的信息,需要高效和稳健的采集和重建技术。在这项研究中,Dixon/IDEAL 型水脂分离方法扩展到 [1-(13)C]丙酮酸及其下游代谢物的光谱成像。为此,光谱空间编码基于单次螺旋图像编码和激发之间的回波时间移位,用于化学位移编码。此外,还采集了自由感应衰减谱,并在重建中有效地利用了获得的化学位移先验知识。发现光谱空间重建问题可以有效地分为化学位移反演和空间重建。该方法成功地在体模和活体大鼠实验中进行了动态、多切片 [1-(13)C]丙酮酸代谢磁共振成像的演示。