PET/MR Engineering, GE Healthcare, Waukesha, Wisconsin
Applied Science Lab, GE Healthcare, Menlo Park, California; and.
J Nucl Med. 2018 Jan;59(1):167-172. doi: 10.2967/jnumed.117.194928. Epub 2017 Jul 26.
The recent introduction of simultaneous whole-body PET/MR scanners has enabled new research taking advantage of the complementary information obtainable with PET and MRI. One such application is kinetic modeling, which requires high levels of PET quantitative stability. To accomplish the required PET stability levels, the PET subsystem must be sufficiently isolated from the effects of MR activity. Performance measurements have previously been published, demonstrating sufficient PET stability in the presence of MR pulsing for typical clinical use; however, PET stability during radiofrequency (RF)-intensive and gradient-intensive sequences has not previously been evaluated for a clinical whole-body scanner. In this work, PET stability of the GE SIGNA PET/MR was examined during simultaneous scanning of aggressive MR pulse sequences. PET performance tests were acquired with MR idle and during simultaneous MR pulsing. Recent system improvements mitigating RF interference and gain variation were used. A fast recovery fast spin echo MR sequence was selected for high RF power, and an echo planar imaging sequence was selected for its high heat-inducing gradients. Measurements were performed to determine PET stability under varying MR conditions using the following metrics: sensitivity, scatter fraction, contrast recovery, uniformity, count rate performance, and image quantitation. A final PET quantitative stability assessment for simultaneous PET scanning during functional MRI studies was performed with a spiral in-and-out gradient echo sequence. Quantitation stability of a Ge flood phantom was demonstrated within 0.34%. Normalized sensitivity was stable during simultaneous scanning within 0.3%. Scatter fraction measured with a Ge line source in the scatter phantom was stable within the range of 40.4%-40.6%. Contrast recovery and uniformity were comparable for PET images acquired simultaneously with multiple MR conditions. Peak noise equivalent count rate was 224 kcps at an effective activity concentration of 18.6 kBq/mL, and the count rate curves and scatter fraction curve were consistent for the alternating MR pulsing states. A final test demonstrated quantitative stability during a spiral functional MRI sequence. PET stability metrics demonstrated that PET quantitation was not affected during simultaneous aggressive MRI. This stability enables demanding applications such as kinetic modeling.
最近推出的全身正电子发射断层扫描与磁共振成像(PET/MR)扫描仪使得利用 PET 和 MRI 获得的互补信息进行新的研究成为可能。其中一种应用是动力学建模,它需要高水平的 PET 定量稳定性。为了达到所需的 PET 稳定性水平,PET 子系统必须与 MR 活动的影响充分隔离。以前已经发表了性能测量结果,证明在典型临床应用中存在 MR 脉冲的情况下,PET 具有足够的稳定性;然而,对于临床全身扫描仪,以前尚未评估过在射频(RF)密集和梯度密集序列期间的 PET 稳定性。在这项工作中,检查了 GE SIGNA PET/MR 在同时扫描激进的 MR 脉冲序列期间的 PET 稳定性。在 MR 空闲和同时 MR 脉冲期间获取了 PET 性能测试。使用了最近减轻 RF 干扰和增益变化的系统改进。选择快速恢复快速自旋回波(Fast Recovery Fast Spin Echo,FRFSE)MR 序列用于高 RF 功率,选择回波平面成像(Echo Planar Imaging,EPI)序列用于其高致热梯度。进行了测量以根据以下指标确定变化的 MR 条件下的 PET 稳定性:灵敏度、散射分数、对比度恢复、均匀性、计数率性能和图像定量。使用螺旋内外梯度回波序列对功能磁共振成像研究期间的同时 PET 扫描进行了最终的 PET 定量稳定性评估。Ge 洪水体模的定量稳定性在 0.34%以内得到证明。在同时扫描期间归一化灵敏度在 0.3%以内稳定。在散射体模中的 Ge 线源中测量的散射分数在 40.4%-40.6%范围内稳定。对于同时获取的具有多种 MR 条件的 PET 图像,对比度恢复和均匀性相当。在有效活度浓度为 18.6 kBq/mL 时,峰值噪声等效计数率为 224 kcps,并且在交替的 MR 脉冲状态下,计数率曲线和散射分数曲线一致。最后的测试证明了在螺旋功能磁共振成像序列期间的定量稳定性。PET 稳定性指标表明,在同时进行激进的 MRI 时,PET 定量没有受到影响。这种稳定性使动力学建模等苛刻的应用成为可能。