Theoretical and experimental evaluation of phase-dispersion effects caused by brain motion in diffusion and perfusion MR imaging

被引:42
作者
Wirestam, R
Greitz, D
Thomsen, C
Brockstedt, S
Olsson, MBE
Stahlberg, F
机构
[1] Department of Radiation Physics, Lund University Hospital
[2] Department of Diagnostic Radiology, Lund University Hospital
[3] Department of Neuroradiology, Karolinska Hospital, Stockholm
[4] Danish Research Center of Magnetic Resonance, Hvidovre University Hospital
来源
JMRI-JOURNAL OF MAGNETIC RESONANCE IMAGING | 1996年 / 6卷 / 02期
关键词
magnetic resonance; MR imaging; brain motion; diffusion; perfusion; phase dispersion;
D O I
10.1002/jmri.1880060215
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
We investigated intravoxel phase dispersion caused by pulsatile brain motion in diffusion spin-echo pulse sequences. Mathematical models were used to describe the spatial and temporal velocity distributions of human brain motion. The spatial distribution of brain-tissue velocity introduces a phase spread over one voxel, leading to signal loss. This signal loss was estimated theoretically, and effects on observed diffusion coefficient and perfused capillary fraction were assessed. When parameters from a diffusion pulse sequence without motion compensation were used, and ECG triggering with inappropriate delay times was assumed, the maximal signal loss caused by brain-motion-induced phase dispersion was predicted to be 21%. This corresponds to a 95% overestimation of the diffusion coefficient, and the perfusion-fraction error was small, Corresponding calculations for motion-compensated pulse sequences predicted a 1% to 1.5% signal loss due to undesired phase dispersion, whereas experimental results indicated a signal loss related to brain motion of 4%.
引用
收藏
页码:348 / 355
页数:8
相关论文
共 31 条
[1]   ANALYSIS AND CORRECTION OF MOTION ARTIFACTS IN-DIFFUSION WEIGHTED IMAGING [J].
ANDERSON, AW ;
GORE, JC .
MAGNETIC RESONANCE IN MEDICINE, 1994, 32 (03) :379-387
[2]  
BROCKSTEDT S, 1995, ACTA RADIOL, V36, P662
[3]   EFFECT OF BULK TISSUE MOTION ON QUANTITATIVE PERFUSION AND DIFFUSION MAGNETIC-RESONANCE-IMAGING [J].
CHENEVERT, TL ;
PIPE, JG .
MAGNETIC RESONANCE IN MEDICINE, 1991, 19 (02) :261-265
[4]   QUANTITATIVE MEASUREMENT OF TISSUE PERFUSION AND DIFFUSION INVIVO [J].
CHENEVERT, TL ;
PIPE, JG ;
WILLIAMS, DM ;
BRUNBERG, JA .
MAGNETIC RESONANCE IN MEDICINE, 1991, 17 (01) :197-212
[5]   MR DIFFUSION IMAGING OF THE HUMAN BRAIN [J].
CHIEN, D ;
BUXTON, RB ;
KWONG, KK ;
BRADY, TJ ;
ROSEN, BR .
JOURNAL OF COMPUTER ASSISTED TOMOGRAPHY, 1990, 14 (04) :514-520
[6]  
CHRISTIANSEN P, 1993, ACTA NEUROL SCAND, V87, P195
[7]   ADAPTIVE TECHNIQUE FOR HIGH-DEFINITION MR IMAGING OF MOVING STRUCTURES [J].
EHMAN, RL ;
FELMLEE, JP .
RADIOLOGY, 1989, 173 (01) :255-263
[8]   BRAIN MOTION - MEASUREMENT WITH PHASE-CONTRAST MR IMAGING [J].
ENZMANN, DR ;
PELC, NJ .
RADIOLOGY, 1992, 185 (03) :653-660
[9]   A THEORETICAL-STUDY OF AMPLITUDE-MODULATION AND TIME SHIFTING IN QUANTITATIVE MR MEASUREMENTS OF MOTION IN BRAIN-TISSUE [J].
FRANCK, A ;
GREITZ, D ;
NORDELL, B ;
STAHLBERG, F .
MAGNETIC RESONANCE IMAGING, 1993, 11 (05) :739-747
[10]   PULSATILE BRAIN MOVEMENT AND ASSOCIATED HYDRODYNAMICS STUDIED BY MAGNETIC-RESONANCE PHASE IMAGING - THE MONRO-KELLIE DOCTRINE REVISITED [J].
GREITZ, D ;
WIRESTAM, R ;
FRANCK, A ;
NORDELL, B ;
THOMSEN, C ;
STAHLBERG, F .
NEURORADIOLOGY, 1992, 34 (05) :370-380