Department of Circulation & Medical Imaging, Norwegian University of Science and Technology, 7006 Trondheim, Norway.
Magn Reson Imaging. 2011 Jan;29(1):1-8. doi: 10.1016/j.mri.2010.07.007. Epub 2010 Sep 22.
Research on the functions of the human brain requires that functional magnetic resonance imaging (MRI) moves towards producing images with less distortion and higher temporal and spatial resolution. This study compares passband balanced steady-state free precession (bSSFP) acquisitions with and without parallel imaging (PI) to investigate whether combining PI with this pulse sequence is a viable option for functional MRI. Such a novel combination has the potential to offer the distortion-free advantages of bSSFP with the reduced acquisition time of PI. Scans were done on a Philips 3T Intera, using the installed bSSFP pulse sequence, both with and without the sensitivity encoding (SENSE) PI option. The task was a visual flashing checkerboard, and the viewing window covered the visual cortex. Sensitivity comparisons with and without PI were done using the same manually drawn region of interest for each time course of the subject, and comparing the z-score summary statistics: number of voxels with z>2.3, the mean of those voxels, their 90th percentile and their maximum value. We show that PI greatly improves the temporal resolution in bSSFP, reducing the volume acquisition time by more than half in this study to 0.67 s with 3-mm isotropic voxels. At the same time, a statistically significant increase was found for the maximum z-score using bSSFP with PI as compared to without it (P=.02). This improvement can be understood in terms of physiological noise, as demonstrated by noise measurements. This produces observed increases in the overall temporal signal to noise of the functional time series, giving greater sensitivity to functional activations with PI. This study demonstrates for the first time the possibility of combining PI with bSSFP to achieve distortion-free functional images without loss of sensitivity and with high temporal resolution.
研究人类大脑的功能需要使功能磁共振成像(fMRI)朝着产生失真更小、时间和空间分辨率更高的图像的方向发展。本研究比较了带和不带并行成像(PI)的带通平衡稳态自由进动(bSSFP)采集,以探讨将 PI 与该脉冲序列相结合是否是功能 MRI 的可行选择。这种新的组合有可能提供 bSSFP 的无失真优势,同时减少 PI 的采集时间。使用安装的 bSSFP 脉冲序列在飞利浦 3T Intera 上进行扫描,同时具有和不具有灵敏度编码(SENSE)PI 选项。任务是一个视觉闪烁棋盘,观察窗口覆盖视觉皮层。使用相同的手动感兴趣区(ROI)对带和不带 PI 的灵敏度进行比较,比较每个受试者时间过程的 z 分数汇总统计数据:z>2.3 的体素数量、这些体素的平均值、它们的 90 百分位数和最大值。我们表明,PI 大大提高了 bSSFP 的时间分辨率,在这项研究中,将体积采集时间减少了一半以上,达到 0.67s,具有 3mm 各向同性体素。同时,与不带 PI 相比,使用带 PI 的 bSSFP 发现最大 z 分数有统计学显著增加(P=.02)。这种改进可以从生理噪声方面理解,如噪声测量所示。这会导致功能时间序列的整体时间信号到噪声比增加,从而提高了对带 PI 的功能激活的灵敏度。本研究首次证明了将 PI 与 bSSFP 相结合的可能性,可实现无失真的功能图像,而不会降低灵敏度,同时具有高时间分辨率。