Klomp Dennis W J, Van Laarhoven Hanneke W M, Kentgens Arno P M, Heerschap Arend
Department of Radiology, University Medical Center Nijmegen, Nijmegen, The Netherlands.
Magn Reson Med. 2003 Aug;50(2):303-8. doi: 10.1002/mrm.10527.
Fluorine MR spectroscopy ((19)F MRS) is an indispensable tool for assessing the pharmacokinetics of fluorinated drugs. Since the metabolism of 5-fluorouracil (5FU), a frequently used cytotoxic drug, is expected to be different in normal liver and in tumor tissue, spatial localization is required for detection by MRS. In this study, three independent signal-to-noise ratio (SNR) optimizations were combined to enable chemical shift imaging (CSI) as a localization method in the detection of 5FU and its metabolites in tumor tissue. First, the hardware was optimized by using circularly polarized coils together with integrated preamplifiers. Second, the optimal pulse angle (Ernst angle) was determined on the basis of T(1) relaxation time measurements of 5FU. Finally, averaging of CSI phase-encoding steps was optimized by using the applied Hamming filter as a weighting function. The combination of these three methods enables the in vivo detection of 5FU and alpha-fluoro-beta-alanine (FBAL) by (19)F MRS, localized in three dimensions in tumor and liver tissue at a time resolution of 4 min at 1.5 Tesla.
氟磁共振波谱法(¹⁹F MRS)是评估含氟药物药代动力学的必备工具。由于常用的细胞毒性药物5-氟尿嘧啶(5FU)在正常肝脏和肿瘤组织中的代谢情况预计不同,因此磁共振波谱法检测需要进行空间定位。在本研究中,将三种独立的信噪比(SNR)优化方法相结合,使化学位移成像(CSI)作为一种定位方法,用于检测肿瘤组织中的5FU及其代谢产物。首先,通过使用圆极化线圈和集成前置放大器对硬件进行优化。其次,根据5FU的T(1)弛豫时间测量结果确定最佳脉冲角(恩斯特角)。最后,通过使用应用的汉明滤波器作为加权函数,优化CSI相位编码步骤的平均。这三种方法的结合能够通过¹⁹F MRS在体内检测5FU和α-氟-β-丙氨酸(FBAL),在1.5特斯拉场强下以4分钟的时间分辨率在肿瘤和肝脏组织中进行三维定位。