Optimized EPI for fMRI studies of the orbitofrontal cortex: compensation of susceptibility-induced gradients in the readout direction

被引:131
作者
Weiskopf, Nikolaus [1 ]
Hutton, Chloe [1 ]
Josephs, Oliver [1 ]
Turner, Robert [1 ]
Deichmann, Ralf [1 ]
机构
[1] UCL, Inst Neurol, Wellcome Trust Ctr Neuroimaging, London WC1N 3BG, England
基金
英国惠康基金;
关键词
fMRI; echo-planar imaging; susceptibility artifacts;
D O I
10.1007/s10334-006-0067-6
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
Object Most functional magnetic resonance imaging (fMRI) studies record the blood oxygen leveldependent (BOLD) signal using gradient-echo echo-planar imaging (GE EPI). EPI can suffer from substantial BOLD sensitivity loss caused by magnetic field inhomogeneities. Here, BOLD sensitivity losses due to susceptibility-induced gradients in the readout (RO) direction are characterized and a compensation approach is developed. Materials and Methods Based on a theory describing the dropout mechanism, an EPI sequence was optimized for maximal BOLD sensitivity in the orbitofrontal cortex (OFC) using a specific combination of an increased spatial resolution in the RO direction and a reduced echo time. Using measured BOLD sensitivity maps and a breath hold experiment, the model and compensation approach were tested. Results Using typical fMRI EPI parameters, susceptibility-induced gradients in the RO direction caused dropouts in the OFC and the inferior temporal lobe. Optimizing the echo time and spatial resolution effectively reduced the dropout as predicted by the theory. Conclusion The model-based compensation approach effectively reduces BOLD sensitivity losses due to susceptibility-induced gradients in the RO direction. It retains the high temporal resolution of single-shot EPI and can be readily combined with methods for the compensation of susceptibility-induced field gradients in the phase-encoding and through-plane direction.
引用
收藏
页码:39 / 49
页数:11
相关论文
共 41 条
[1]   Modeling geometric deformations in EPI time series [J].
Andersson, JLR ;
Hutton, C ;
Ashburner, J ;
Turner, R ;
Friston, K .
NEUROIMAGE, 2001, 13 (05) :903-919
[2]   Selection of voxel size and slice orientation for fMRI in the presence of susceptibility field gradients: application to imaging of the amygdala [J].
Chen, NK ;
Dickey, CC ;
Yoo, SS ;
Guttman, CRG ;
Panych, LP .
NEUROIMAGE, 2003, 19 (03) :817-825
[3]   REDUCTION OF SUSCEPTIBILITY ARTIFACT IN GRADIENT-ECHO IMAGING [J].
CHO, ZH ;
RO, YM .
MAGNETIC RESONANCE IN MEDICINE, 1992, 23 (01) :193-200
[4]  
Constable RT, 1999, MAGNET RESON MED, V42, P110, DOI 10.1002/(SICI)1522-2594(199907)42:1<110::AID-MRM15>3.0.CO
[5]  
2-3
[6]   Compensation of susceptibility-induced signal loss in echo-planar imaging for functional applications [J].
Cordes, D ;
Turski, PA ;
Sorenson, JA .
MAGNETIC RESONANCE IMAGING, 2000, 18 (09) :1055-1068
[7]   Positive or negative blips? The effect of phase encoding scheme on susceptibility-induced signal losses in EPI [J].
De Panfilis, C ;
Schwarzbauer, C .
NEUROIMAGE, 2005, 25 (01) :112-121
[8]   Optimisation of the 3D MDEFT sequence for anatomical brain imaging: Technical implications at 1.5 and 3 T [J].
Deichmann, R ;
Schwarzbauer, C ;
Turner, R .
NEUROIMAGE, 2004, 21 (02) :757-767
[9]   Compensation of susceptibility-induced BOLD sensitivity losses in echo-planar fMRI Imaging [J].
Deichmann, R ;
Josephs, O ;
Hutton, C ;
Corfield, DR ;
Turner, R .
NEUROIMAGE, 2002, 15 (01) :120-135
[10]   Optimized EPI for fMRI studies of the orbitofrontal cortex [J].
Deichmann, R ;
Gottfried, JA ;
Hutton, C ;
Turner, R .
NEUROIMAGE, 2003, 19 (02) :430-441