Department of Radiological Technology, Miyazaki University School of Medicine, Kiyotake, Miyazaki, Japan.
Magn Reson Med Sci. 2010;9(3):159-65. doi: 10.2463/mrms.9.159.
Hybrid of opposite-contrast (HOP) magnetic resonance angiography (MRA) is a new method that combines the advantages of 3-dimensional (3D) time-of-flight (TOF) MRA and black-blood (BB) MRA without prolonging acquisition time. In phantom and clinical studies, we focused on image differences when we applied gradient moment nulling (GMN) to 2 or 3 axes in the first echo. We made an original phantom with a semicircular tube of 3- and 5-mm internal diameter, with flow rate in the tube of 0, 20, 60, 80, or 120 cm/s. In original images of the phantom obtained with TOF MRA and flow-sensitive BB MRA and in filter frequency-weighted subtraction (FWS) processed images acquired with HOP MRA, we measured the contrast-to-noise ratio (CNR) of both the inside and outside of the tubes. In FWS processed images with GMN applied to 2 axes, the CNR was high at various flow rates in both straight and bending portions of the tubes in comparison with TOF images. In a clinical study in 15 patients, we evaluated vessel visualization in images obtained using conventional TOF MRA with magnetization transfer contrast (MTC) and HOP MRA. In clinical studies, visualization scores of HOP MRA were equivalent to those of conventional TOF MRA in the bilateral internal carotid arteries (ICA) and inferior in the basilar arteries. However, visualization of the peripheral portion of the middle cerebral artery (MCA) improved significantly in HOP MRA with GMN applied to 2 and 3 axes. Visualization of the main trunk of the ICA and MCA was superior in HOP MRA with GMN applied to 2 axes. HOP MRA with 2-axis GMN may be useful for excellent visualization of both major arteries and peripheral vessels in the head.
对比反转(HOP)磁共振血管造影(MRA)是一种新的方法,它结合了 3 维(3D)时间飞跃(TOF)MRA 和黑血(BB)MRA 的优点,而不延长采集时间。在体模和临床研究中,我们专注于在第一个回波中应用梯度矩置零(GMN)到 2 个或 3 个轴时的图像差异。我们用一个 3 毫米和 5 毫米内径的半圆形管制作了一个原始体模,管内的流速为 0、20、60、80 或 120 厘米/秒。在我们用 TOF MRA 和流动敏感的 BB MRA 获得的原始体模图像和用 HOP MRA 获得的滤波频率加权减法(FWS)处理的图像中,我们测量了管内外的对比噪声比(CNR)。在应用 GMN 到 2 个轴的 FWS 处理的图像中,与 TOF 图像相比,在管的直段和弯曲段的各种流速下,CNR 都很高。在 15 例患者的临床研究中,我们评估了使用常规 TOF MRA 结合磁化转移对比(MTC)和 HOP MRA 获得的图像中的血管可视化。在临床研究中,HOP MRA 的可视化评分在双侧颈内动脉(ICA)和基底动脉下部与常规 TOF MRA 相当。然而,在应用 GMN 到 2 个和 3 个轴的 HOP MRA 中,大脑中动脉(MCA)的外周部分的可视化得到了显著改善。在应用 GMN 到 2 个轴的 HOP MRA 中,ICA 和 MCA 的主干的可视化效果更好。应用 GMN 到 2 个轴的 HOP MRA 可能对头部的主要动脉和外周血管的优异可视化有用。