Klomp D W J, Renema W K J, van der Graaf M, de Galan B E, Kentgens A P M, Heerschap A
Department of Radiology, Radboud University Nijmegen Medical Center, Nijmegen, The Netherlands.
Magn Reson Med. 2006 Feb;55(2):271-8. doi: 10.1002/mrm.20745.
A new coil design for sensitivity-enhanced 13C MR spectroscopy (MRS) of the human brain is presented. The design includes a quadrature transmit/receive head coil optimized for 13C MR sensitivity. Loss-less blocking circuits inside the coil conductors allow this coil to be used inside a homogeneous circularly polarized 1H B1 field for 1H decoupled 13C MRS. A quadrature 1H birdcage coil optimized for minimal local RF heating makes broadband 1H decoupling in the entire human brain possible at 3 Tesla while remaining well within international safety guidelines for RF absorption. Apart from a substantial increase in sensitivity compared to conventional small linear coils, the quadrature 13C coil combined with the quadrature 1H birdcage coil allows efficient cross polarization (CP) in the brain, resulting in an additional 3.5-fold sensitivity improvement compared to direct 13C measurements without nuclear Overhauser enhancement (NOE) or polarization transfer. Combined with the gain in power efficiency, this setup allows broadband 1H to 13C CP over large areas of the brain. Clear 13C resonances from glutamate (Glu), glutamine (Gln), aspartate (Asp), lactate (Lac), and gamma-aminobutyrate (GABA) carbon spins in the human brain demonstrate the quality of 13C MR spectra obtained in vivo with this coil setup.
本文介绍了一种用于提高人脑13C磁共振波谱(MRS)灵敏度的新型线圈设计。该设计包括一个针对13C MR灵敏度优化的正交发射/接收头部线圈。线圈导体内部的无损阻塞电路使该线圈能够在均匀圆极化1H B1场中用于1H去耦13C MRS。一个针对最小局部射频加热优化的正交1H鸟笼线圈使得在3特斯拉时能够在整个人脑中进行宽带1H去耦,同时仍完全符合国际射频吸收安全准则。与传统的小型线性线圈相比,除了灵敏度大幅提高外,正交13C线圈与正交1H鸟笼线圈相结合可在大脑中实现高效交叉极化(CP),与没有核Overhauser增强(NOE)或极化转移的直接13C测量相比,灵敏度提高了3.5倍。结合功率效率的提高,这种设置允许在大脑的大面积区域进行宽带1H到13C的CP。来自人脑中谷氨酸(Glu)、谷氨酰胺(Gln)、天冬氨酸(Asp)、乳酸(Lac)和γ-氨基丁酸(GABA)碳自旋的清晰13C共振证明了使用这种线圈设置在体内获得的13C MR谱的质量。