Real-time functional magnetic resonance imaging: methods and applications

被引:176
作者
Weiskopf, Nikolaus [1 ]
Sitaram, Ranganatha
Josephs, Oliver
Veit, Ralf
Scharnowski, Frank
Goebel, Rainer
Birbaumer, Niels
Deichmann, Ralf
Mathiak, Klaus
机构
[1] UCL, Wellcome Trust Ctr Neuroimaging, Inst Neurol, London WC1N 3BG, England
[2] Univ Tubingen, Inst Med Psychol & Behav Neurobiol, D-72074 Tubingen, Germany
[3] Max Planck Inst Biol Cybernet, High Field Magnet Brian Mind Inst, D-72076 Tubingen, Germany
[4] Maastricht Univ, Fac Psychol, Dept Cognit Neurosci, NL-6200 MD Maastricht, Netherlands
[5] Univ Aachen, Dept Psychiat & Psychotherapy, D-52074 Aachen, Germany
基金
英国惠康基金;
关键词
real-time functional magnetic resonance imaging; brain-computer interface; neurofeedback; quality assurance; functional localizer; teaching; review;
D O I
10.1016/j.mri.2007.02.007
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
Functional magnetic resonance imaging (fMRI) has been limited by time-consuming data analysis and a low signal-to-noise ratio, impeding online analysis. Recent advances in acquisition techniques, computational power and algorithms increased the sensitivity and speed of fMRI significantly, making real-time analysis and display of fMRI data feasible. So far, most reports have focused on the technical aspects of real-time fMRI (rtfMRI). Here, we provide an overview of the different major areas of applications that became possible with rtfMRI: online analysis of single-subject data provides immediate quality assurance and functional localizers guiding the main fMRI experiment or surgical interventions. In teaching, rtfMRI naturally combines all essential parts of a neuroimaging experiment, such as experimental design, data acquisition and analysis, while adding a high level of interactivity. Thus, the learning of essential knowledge required to conduct functional imaging, experiments is facilitated. rtfMRI allows for brain-computer interfaces (130) with a high spatial and temporal resolution and whole-brain coverage. Recent studies have shown that such BCI can be used to provide online feedback of the blood-oxygen-level-dependent signal and to learn the self-regulation of local brain activity. Preliminary evidence suggests that this local self-regulation can be used as a new paradigm in cognitive neuroscience to study brain plasticity and the functional relevance of brain areas, even being potentially applicable for psychophysiological treatment. (c) 2007 Elsevier Inc. All rights reserved.
引用
收藏
页码:989 / 1003
页数:15
相关论文
共 105 条
[41]   High-resolution imaging reveals highly selective nonface clusters in the fusiform face area [J].
Grill-Spector, Kalanit ;
Sayres, Rory ;
Ress, David .
NATURE NEUROSCIENCE, 2006, 9 (09) :1177-1185
[42]  
Gulrajani RM, 1998, BIOELECTRICITY BIOMA
[43]   Real-time quantification of T*2 changes using multiecho planar imaging and numerical methods [J].
Hagberg, GE ;
Indovina, I ;
Sanes, JN ;
Posse, S .
MAGNETIC RESONANCE IN MEDICINE, 2002, 48 (05) :877-882
[44]   Predicting the orientation of invisible stimuli from activity in human primary visual cortex [J].
Haynes, JD ;
Rees, G .
NATURE NEUROSCIENCE, 2005, 8 (05) :686-691
[45]   Neuronal ensemble control of prosthetic devices by a human with tetraplegia [J].
Hochberg, Leigh R. ;
Serruya, Mijail D. ;
Friehs, Gerhard M. ;
Mukand, Jon A. ;
Saleh, Maryam ;
Caplan, Abraham H. ;
Branner, Almut ;
Chen, David ;
Penn, Richard D. ;
Donoghue, John P. .
NATURE, 2006, 442 (7099) :164-171
[46]   The assessment of hemispheric lateralization in functional MRI -: Robustness and reproducibility [J].
Jansen, A. ;
Menke, R. ;
Sommer, J. ;
Foerster, A. F. ;
Bruchmann, S. ;
Hempleman, J. ;
Weber, B. ;
Knecht, S. .
NEUROIMAGE, 2006, 33 (01) :204-217
[47]  
Jezzard P, 1999, HUM BRAIN MAPP, V8, P80, DOI 10.1002/(SICI)1097-0193(1999)8:2/3<80::AID-HBM2>3.0.CO
[48]  
2-C
[49]  
JOSEPHS O, 2006, P ISMRM 14 SEATTL WA
[50]  
JOSEPHS O, 2000, P INT SOC MAGN RESON, V8, P1517