Quantification of signal changes in gradient recalled echo FMRI

被引:7
作者
Diemling, M [1 ]
Barth, M [1 ]
Moser, E [1 ]
机构
[1] UNIV VIENNA, INST MED PHYS, ARBEITSGRP NMR, A-1090 VIENNA, AUSTRIA
关键词
fMRI; model calculations; flow; BOLD; human visual cortex;
D O I
10.1016/S0730-725X(97)00030-1
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
Understanding and quantifying the various contributions to functional magnetic resonance imaging (FMRI) signal changes in activated cortical areas is paramount for a clinical application of brain mapping by FMRI, Therefore, all significant contributions to FMRI signal changes, both extra-and intravascular, from macrovessels down to the capillary network, should be taken into account, We present a gradient-recalled-echo FMRI model based on in-flow effects described by the Bloch equations, adding susceptibility effects empirically via T-2* differences measured in vitro in human blood samples, Results of these calculations (by systematically varying alpha, echo time (TE), repetition time (TR), as well as blood velocity and T-2* upon stimulation) may be used to (a) simulate functional MRI experiments with different measurement protocols and (b) estimate realistic values for important anatomical and physiological details that influence local signal changes in FMRI (i.e., size and distribution of vessels, effective relaxation times of blood, etc.), The excellent agreement between our model calculations and experimental results from conventional gradient recalled echo fMRI in vivo suggests a significant contribution from very slow flow avid oxygenation changes, predominantly in small vessels (vblood = 1-4 mm/s). The actual contribution of T-1- and T-2-related effects is strongly dependent on sequence design and actual sequence parameters used, Thus, the model simulations presented may also be used to optimize measurement protocols for investigating various neurophysiological phenomena. (C) 1997 Elsevier Science Inc.
引用
收藏
页码:753 / 762
页数:10
相关论文
共 27 条
[21]   FUNCTIONAL BRAIN MAPPING BY BLOOD OXYGENATION LEVEL-DEPENDENT CONTRAST MAGNETIC-RESONANCE-IMAGING - A COMPARISON OF SIGNAL CHARACTERISTICS WITH A BIOPHYSICAL MODEL [J].
OGAWA, S ;
MENON, RS ;
TANK, DW ;
KIM, SG ;
MERKLE, H ;
ELLERMANN, JM ;
UGURBIL, K .
BIOPHYSICAL JOURNAL, 1993, 64 (03) :803-812
[22]   OXYGENATION-SENSITIVE CONTRAST IN MAGNETIC-RESONANCE IMAGE OF RODENT BRAIN AT HIGH MAGNETIC-FIELDS [J].
OGAWA, S ;
LEE, TM ;
NAYAK, AS ;
GLYNN, P .
MAGNETIC RESONANCE IN MEDICINE, 1990, 14 (01) :68-78
[23]   BLUE-BLOOD OR BLACK BLOOD - R(1) EFFECTS IN GRADIENT-ECHO ECHO-PLANAR FUNCTIONAL NEUROIMAGING [J].
RIGHINI, A ;
PIERPAOLI, C ;
BARNETT, AS ;
WAKS, E ;
ALGER, JR .
MAGNETIC RESONANCE IMAGING, 1995, 13 (03) :369-378
[24]   FUNCTIONAL MRI OF THE HUMAN BRAIN - PREDOMINANCE OF SIGNALS FROM EXTRACEREBRAL VEINS [J].
SEGEBARTH, C ;
BELLE, V ;
DELON, C ;
MASSARELLI, R ;
DECETY, J ;
LEBAS, JF ;
DECORPS, M ;
BENABID, AL .
NEUROREPORT, 1994, 5 (07) :813-816
[25]  
THEWS G, 1991, ANATOMIE PHYSL PATHO
[26]   OXYGENATION DEPENDENCE OF THE TRANSVERSE RELAXATION-TIME OF WATER PROTONS IN WHOLE-BLOOD AT HIGH-FIELD [J].
THULBORN, KR ;
WATERTON, JC ;
MATTHEWS, PM ;
RADDA, GK .
BIOCHIMICA ET BIOPHYSICA ACTA, 1982, 714 (02) :265-270
[27]   MICROSCOPIC SUSCEPTIBILITY VARIATION AND TRANSVERSE RELAXATION - THEORY AND EXPERIMENT [J].
WEISSKOFF, RM ;
ZUO, CS ;
BOXERMAN, JL ;
ROSEN, BR .
MAGNETIC RESONANCE IN MEDICINE, 1994, 31 (06) :601-610