Department of Biomedical Engineering, Georgia Institute of Technology/Emory University, Atlanta, Georgia, USA.
Magn Reson Med. 2010 Dec;64(6):1827-31. doi: 10.1002/mrm.22554.
Arterial spin labeling-based cerebral blood flow imaging complements blood oxygenation level dependent (BOLD) imaging with a measure that is more quantitative and has better specificity to neuronal activation. Relative to gradient echo BOLD, spin echo BOLD has better spatial specificity because it is less biased to large draining veins. Although there have been many studies comparing simultaneously acquired cerebral blood flow data with gradient echo BOLD data in fMRI, there have been few studies comparing cerebral blood flow with SE BOLD and no study comparing all three. We present a pulse sequence that simultaneously acquires cerebral blood flow data with a separate labeling coil, gradient echo BOLD, and spin echo BOLD images. Simultaneous acquisition avoids interscan variability, allowing more direct assessment and comparison of each contrast's relative specificity and reproducibility. Furthermore, it facilitates studies that may benefit from multiple complementary measures.
基于动脉自旋标记的脑血流成像通过一种更定量、对神经元激活具有更好特异性的测量方法来补充血氧水平依赖(BOLD)成像。与梯度回波 BOLD 相比,自旋回波 BOLD 具有更好的空间特异性,因为它对大引流静脉的偏差较小。尽管在 fMRI 中已经有许多研究比较了同时采集的脑血流数据与梯度回波 BOLD 数据,但很少有研究比较脑血流与 SE BOLD,也没有研究同时比较这三种方法。我们提出了一种脉冲序列,该序列使用单独的标记线圈同时采集脑血流数据、梯度回波 BOLD 和自旋回波 BOLD 图像。同步采集可避免扫描间的变异性,从而可以更直接地评估和比较每种对比的相对特异性和可重复性。此外,它还促进了可能受益于多种互补措施的研究。