Invest Radiol. 2018 May;53(5):293-305. doi: 10.1097/RLI.0000000000000442.
In this study, we present a fully automated and robust self-navigated approach to obtain 4-dimensional (4-D) motion-resolved images during free breathing.
The proposed method, Consistently Acquired Projections for Tuned and Robust Estimation (CAPTURE), is a variant of the stack-of-stars gradient-echo sequence. A 1-D navigator was consistently acquired at a fixed azimuthal angle for all stacks of spokes to reduce nonphysiological signal contamination due to system imperfections. The resulting projections were then "tuned" using complex phase rotation to adapt to scan-to-scan variations, followed by the detection of the respiratory curve. Four-dimensional motion-corrected and uncorrected images were then reconstructed via respiratory and temporal binning, respectively.This Health Insurance Portability and Accountability Act-compliant study was performed with Institutional Review Board approval. A phantom experiment was performed using a custom-made deformable motion phantom with an adjustable frequency and amplitude. For in vivo experiments, 10 healthy participants and 12 liver tumor patients provided informed consent and were imaged with the CAPTURE sequence.Two radiologists, blinded to which images were motion-corrected and which were not, independently reviewed the images and scored the image quality using a 5-point Likert scale.
In the respiratory motion phantom experiment, CAPTURE reversed the effects of motion blurring and restored edge sharpness from 36% to 78% of that observed in the images from the static scan.Despite large intra- and intersubject variability in respiration patterns, CAPTURE successfully detected the respiratory motion signal in all participants and significantly improved the image quality according to the subjective radiological assessments of 2 raters (P < 0.05 for both raters) with a 1 to 2-point improvement in the median Likert scores across the whole set of participants. Small lesions (<1 cm in size) which might otherwise be missed on uncorrected images because of motion blurring were more clearly depicted on the CAPTURE images.
CAPTURE provides a robust and fully automated solution for obtaining 4-D motion-resolved images in a free-breathing setting. With its unique tuning feature, CAPTURE can adapt to large intersubject and interscan variations. CAPTURE also enables better lesion delineation because of improved image sharpness, thereby increasing the visibility of small lesions.
本研究提出了一种完全自动化的稳健自导航方法,可在自由呼吸时获得 4 维(4-D)运动分辨图像。
所提出的方法,即一致性采集用于调谐和稳健估计的投影(CAPTURE),是星堆梯度回波序列的一种变体。在所有星堆中,始终以固定的方位角采集 1 维导航器,以减少由于系统不完善导致的非生理信号污染。然后,使用复相旋转对投影进行“调谐”,以适应扫描间的变化,然后检测呼吸曲线。通过呼吸和时间 binning 分别重建 4-D 运动校正和未校正图像。这项符合健康保险流通与责任法案的研究获得了机构审查委员会的批准。使用带有可调节频率和幅度的定制变形运动体模进行了体模实验。对于体内实验,10 名健康志愿者和 12 名肝肿瘤患者提供了知情同意,并使用 CAPTURE 序列进行了成像。两名放射科医生对图像进行了盲法评估,他们不知道哪些图像是运动校正的,哪些不是,他们独立地对图像进行了评估,并使用 5 分李克特量表对图像质量进行了评分。
在呼吸运动体模实验中,CAPTURE 逆转了运动模糊的影响,将边缘锐度从静态扫描图像的 36%恢复到 78%。尽管呼吸模式存在较大的个体内和个体间变异性,但 CAPTURE 成功地检测到了所有参与者的呼吸运动信号,并根据两名放射科医生的主观放射学评估显著提高了图像质量(两名放射科医生的 P 值均<0.05),整个参与者组的中位数李克特评分提高了 1 到 2 分。由于运动模糊,在未校正图像上可能会错过的小病变(<1 cm 大小)在 CAPTURE 图像上显示得更清楚。
CAPTURE 提供了一种在自由呼吸环境下获得 4-D 运动分辨图像的稳健、完全自动化的解决方案。凭借其独特的调谐功能,CAPTURE 可以适应较大的个体间和扫描间变化。CAPTURE 还通过提高图像锐度来更好地描绘病变,从而提高小病变的可见度。