Cheng Ying, van Zijl Peter C M, Pekar James J, Hua Jun
F. M. Kirby Research Center for Functional Brain Imaging, Kennedy Krieger Institute, Baltimore, MD, USA; Department of Biomedical Engineering, Johns Hopkins University School of Medicine, Baltimore, MD, USA.
F. M. Kirby Research Center for Functional Brain Imaging, Kennedy Krieger Institute, Baltimore, MD, USA; Division of MR Research, Russell H. Morgan Department of Radiology and Radiological Science, Johns Hopkins University School of Medicine, Baltimore, MD, USA.
Neuroimage. 2014 Dec;103:533-541. doi: 10.1016/j.neuroimage.2014.08.025. Epub 2014 Aug 23.
In addition to the BOLD scan, quantitative functional MRI studies require measurement of both cerebral blood volume (CBV) and flow (CBF) dynamics. The ability to detect CBV and CBF responses in a single additional scan would shorten the total scan time and reduce temporal variations. Several approaches for simultaneous CBV and CBF measurement during functional MRI experiments have been proposed in two-dimensional (2D) mode covering one to three slices in one repetition time (TR). Here, we extended the principles from previous work and present a three-dimensional (3D) whole-brain MRI approach that combines the vascular-space-occupancy (VASO) and flow-sensitive alternating inversion recovery (FAIR) arterial spin labeling (ASL) techniques, allowing the measurement of CBV and CBF dynamics, respectively, in a single scan. 3D acquisitions are complicated for such a scan combination as the time to null blood signal during a steady state needs to be known. We estimated this using Bloch simulations and demonstrate that the resulting 3D acquisition can detect activation patterns and relative signal changes of quality comparable to that of the original separate scans. The same was found for temporal signal-to-noise ratio (SNR) and contrast-to-noise ratio (CNR). This approach provides improved acquisition efficiency when both CBV and CBF responses need to be monitored during a functional task.
除了血氧水平依赖性功能磁共振成像(BOLD)扫描外,定量功能磁共振成像研究还需要测量脑血容量(CBV)和血流(CBF)动力学。在单次额外扫描中检测CBV和CBF反应的能力将缩短总扫描时间并减少时间变化。在功能磁共振成像实验中,已经提出了几种在二维(2D)模式下同时测量CBV和CBF的方法,在一个重复时间(TR)内覆盖一到三个层面。在此,我们扩展了先前工作的原理,并提出了一种三维(3D)全脑磁共振成像方法,该方法结合了血管空间占据(VASO)和血流敏感交替反转恢复(FAIR)动脉自旋标记(ASL)技术,能够在单次扫描中分别测量CBV和CBF动力学。对于这样的扫描组合,三维采集很复杂,因为需要知道稳态期间使血液信号归零的时间。我们使用布洛赫模拟对其进行了估计,并证明由此产生的三维采集能够检测到与原始单独扫描质量相当的激活模式和相对信号变化。在时间信噪比(SNR)和对比噪声比(CNR)方面也得到了相同的结果。当在功能任务期间需要同时监测CBV和CBF反应时,这种方法可提高采集效率。