Partial volume correction of brain perfusion estimates using the inherent signal data of time-resolved arterial spin labeling

被引:18
作者
Ahlgren, Andre [1 ]
Wirestam, Ronnie [1 ]
Petersen, Esben Thade [2 ]
Stahlberg, Freddy [1 ,3 ]
Knutsson, Linda [1 ]
机构
[1] Lund Univ, Dept Med Radiat Phys, Lund, Sweden
[2] Univ Med Ctr Utrecht, Dept Radiol, Utrecht, Netherlands
[3] Lund Univ, Dept Diagnost Radiol, Lund, Sweden
基金
瑞典研究理事会;
关键词
partial volume correction; partial volume effect; perfusion; arterial spin labeling; brain segmentation; fractional signal modeling; QUASAR; FRASIER; INVERSION; IMAGES; MODEL; MRI; QUANTIFICATION; SEGMENTATION; VALIDATION; FLOW;
D O I
10.1002/nbm.3164
中图分类号
Q6 [生物物理学];
学科分类号
071011 ;
摘要
Quantitative perfusion MRI based on arterial spin labeling (ASL) is hampered by partial volume effects (PVEs), arising due to voxel signal cross-contamination between different compartments. To address this issue, several partial volume correction (PVC) methods have been presented. Most previous methods rely on segmentation of a high-resolution T-1-weighted morphological image volume that is coregistered to the low-resolution ASL data, making the result sensitive to errors in the segmentation and coregistration. In this work, we present a methodology for partial volume estimation and correction, using only low-resolution ASL data acquired with the QUASAR sequence. The methodology consists of a T-1-based segmentation method, with no spatial priors, and a modified PVC method based on linear regression. The presented approach thus avoids prior assumptions about the spatial distribution of brain compartments, while also avoiding coregistration between different image volumes. Simulations based on a digital phantom as well as in vivo measurements in 10 volunteers were used to assess the performance of the proposed segmentation approach. The simulation results indicated that QUASAR data can be used for robust partial volume estimation, and this was confirmed by the in vivo experiments. The proposed PVC method yielded probable perfusion maps, comparable to a reference method based on segmentation of a high-resolution morphological scan. Corrected gray matter (GM) perfusion was 47% higher than uncorrected values, suggesting a significant amount of PVEs in the data. Whereas the reference method failed to completely eliminate the dependence of perfusion estimates on the volume fraction, the novel approach produced GM perfusion values independent of GM volume fraction. The intra-subject coefficient of variation of corrected perfusion values was lowest for the proposed PVC method. As shown in this work, low-resolution partial volume estimation in connection with ASL perfusion estimation is feasible, and provides a promising tool for decoupling perfusion and tissue volume. Copyright (C) 2014 John Wiley & Sons, Ltd.
引用
收藏
页码:1112 / 1122
页数:11
相关论文
共 29 条
[1]  
Ahlgren A, 2011, P 28 ANN M ESMRMB LE, P554
[2]  
Ahlgren A, 2012, P 29 ANN M ESMRMB LI, P110
[3]   Unified segmentation [J].
Ashburner, J ;
Friston, KJ .
NEUROIMAGE, 2005, 26 (03) :839-851
[4]   Regression Algorithm Correcting for Partial Volume Effects in Arterial Spin Labeling MRI [J].
Asllani, Iris ;
Borogovac, Ajna ;
Brown, Truman R. .
MAGNETIC RESONANCE IN MEDICINE, 2008, 60 (06) :1362-1371
[5]   Twenty new digital brain phantoms for creation of validation image data bases [J].
Aubert-Broche, Berengere ;
Griffin, Mark ;
Pike, G. Bruce ;
Evans, Alan C. ;
Collins, D. Louis .
IEEE TRANSACTIONS ON MEDICAL IMAGING, 2006, 25 (11) :1410-1416
[6]   A general kinetic model for quantitative perfusion imaging with arterial spin labeling [J].
Buxton, RB ;
Frank, LR ;
Wong, EC ;
Siewert, B ;
Warach, S ;
Edelman, RR .
MAGNETIC RESONANCE IN MEDICINE, 1998, 40 (03) :383-396
[7]   Reliability of tissue volumes and their spatial distribution for segmented magnetic resonance images [J].
Cardenas, VA ;
Ezekiel, F ;
Di Sclafani, V ;
Gomberg, B ;
Fein, G .
PSYCHIATRY RESEARCH-NEUROIMAGING, 2001, 106 (03) :193-205
[8]   Partial Volume Correction of Multiple Inversion Time Arterial Spin Labeling MRI Data [J].
Chappell, M. A. ;
Groves, A. R. ;
MacIntosh, B. J. ;
Donahue, M. J. ;
Jezzard, P. ;
Woolrich, M. W. .
MAGNETIC RESONANCE IN MEDICINE, 2011, 65 (04) :1173-1183
[9]   Comparing Model-Based and Model-Free Analysis Methods for QUASAR Arterial Spin Labeling Perfusion Quantification [J].
Chappell, Michael A. ;
Woolrich, Mark W. ;
Petersen, Esben T. ;
Golay, Xavier ;
Payne, Stephen J. .
MAGNETIC RESONANCE IN MEDICINE, 2013, 69 (05) :1466-1475
[10]   PERFUSION IMAGING [J].
DETRE, JA ;
LEIGH, JS ;
WILLIAMS, DS ;
KORETSKY, AP .
MAGNETIC RESONANCE IN MEDICINE, 1992, 23 (01) :37-45