Determination of Spin Compartment in Arterial Spin Labeling MRI

被引:57
作者
Liu, Peiying [1 ]
Uh, Jinsoo [1 ]
Lu, Hanzhang [1 ]
机构
[1] Univ Texas SW Med Ctr Dallas, Adv Imaging Res Ctr, Dallas, TX 75390 USA
关键词
arterial transit time; tissue transit time; ASL MRI; cerebral blood flow; spin compartment; T2; relaxation; CEREBRAL-BLOOD-FLOW; TRANSIT-TIME; PERFUSION; VOLUME; QUANTIFICATION; STIMULATION; OXYGENATION; ACTIVATION; EFFICIENCY; SIGNAL;
D O I
10.1002/mrm.22601
中图分类号
R8 [特种医学]; R445 [影像诊断学];
学科分类号
1002 ; 100207 ; 1009 ;
摘要
A major difference between arterial-spin-labeling MRI and gold-standard radiotracer blood flow methods is that the compartment localization of the labeled spins in the arterial-spin-labeling image is often ambiguous, which may affect the quantification of cerebral blood flow. In this study, we aim to probe whether the spins are located in the vascular system or tissue by using T2 of the arterial-spin-labeling signal as a marker. We combined two recently developed techniques, pseudo-continuous arterial spin labeling and T2-Relaxation-Under-Spin-Tagging, to determine the T2 of the labeled spins at multiple postlabeling delay times. Our data suggest that the labeled spins first showed the T2 of arterial blood followed by gradually approaching and stabilizing at the tissue T2. The T2 values did not decrease further toward the venous T2. By fitting the experimental data to a two-compartment model, we estimated gray matter cerebral blood flow, arterial transit time, and tissue transit time to be 74.0 +/- 10.7 mL/100g/min (mean +/- SD, N = 10), 938 +/- 156 msec, and 1901 +/- 181 msec, respectively. The arterial blood volume was calculated to be 1.18 +/- 0.21 mL/100 g. A postlabeling delay time of 2 s is sufficient to allow the spins to completely enter the tissue space for gray matter but not for white matter. Magn Reson Med 65:120-127, 2011. (c) 2010 Wiley-Liss, Inc.
引用
收藏
页码:120 / U3
页数:9
相关论文
共 40 条
[21]   Determining the longitudinal relaxation time (T1) of blood at 3.0 tesla [J].
Lu, HZ ;
Clingman, C ;
Golay, X ;
van Zijl, PCM .
MAGNETIC RESONANCE IN MEDICINE, 2004, 52 (03) :679-682
[22]  
Luh WM, 1999, MAGNET RESON MED, V41, P1246, DOI 10.1002/(SICI)1522-2594(199906)41:6<1246::AID-MRM22>3.0.CO
[23]  
2-N
[24]  
Luh WM., 2008, P 16 ANN M ISMRM ON, P186
[25]   Continuous arterial spin labeling at the human common carotid artery:: the influence of transit times [J].
Mildner, T ;
Möller, HE ;
Driesel, W ;
Norris, DG ;
Trampel, R .
NMR IN BIOMEDICINE, 2005, 18 (01) :19-23
[26]  
MINTUN MA, 1984, J NUCL MED, V25, pP72
[27]   Sickle cell disease: Continuous arterial spin-labeling perfusion MR imaging in children [J].
Oguz, KK ;
Golay, X ;
Pizzini, FB ;
Freer, CA ;
Winrow, N ;
Ichord, R ;
Casella, JF ;
van Zijl, PCM ;
Melhem, ER .
RADIOLOGY, 2003, 227 (02) :567-574
[28]   Model-free arterial spin labeling quantification approach for perfusion MRI [J].
Petersen, ET ;
Lim, T ;
Golay, X .
MAGNETIC RESONANCE IN MEDICINE, 2006, 55 (02) :219-232
[29]   Modelling vascular reactivity to investigate the basis of the relationship between cerebral blood volume and flow under CO2 manipulation [J].
Piechnik, Stefan K. ;
Chiarelli, Peter A. ;
Jezzard, Peter .
NEUROIMAGE, 2008, 39 (01) :107-118
[30]   Functional imaging with FENSI: Flow-enhanced signal intensity [J].
Sutton, Bradley P. ;
Ouyang, Cheng ;
Ching, Bryce L. ;
Ciobanu, Luisa .
MAGNETIC RESONANCE IN MEDICINE, 2007, 58 (02) :396-401