Endogenous brain oscillations and related networks detected by surface EEG-combined fMRI

被引:145
作者
Laufs, Helmut [1 ,2 ,3 ]
机构
[1] Goethe Univ Frankfurt, Dept Neurol, Frankfurt, Germany
[2] Goethe Univ Frankfurt, Brain Imaging Ctr, Frankfurt, Germany
[3] UCL, Inst Neurol, Dept Clin & Expt Epilepsy, London WC1E 6BT, England
关键词
eeg; fmri; endogeneous oscillations; sleep; sleep spindles; alpha; beta; default mode; epilepsy;
D O I
10.1002/hbm.20600
中图分类号
Q189 [神经科学];
学科分类号
071006 ;
摘要
It is difficult to study the brain "at rest" with an approach generally pursued in science when external manipulation (independent variable) is used to obtain informative measurements (dependent variable) about the object of interest. External manipulation in its classic sense may suspend the resting state, and hence the object of interest will evade. Naturally, unless in a final and irreversible state, biological rest will always be an endogenously dynamic process. Combining two modalities, electroence-phalography (EEG) and functional magnetic resonance imaging (fMRI), to simultaneously measure the brain's activity from two angles, one can be chosen to be interpreted as the independent variable and the other as the dependent variable, and without external manipulation the brain's spontaneous dynamics can be studied. The EEG, for example, observes endogenous modulations of vigilance and detects spontaneous events such as sleep spindles or epileptic discharges and can be used as the independent variable, i.e., to form a regressor to interrogate the fMRI data (dependent variable). The opposite is possible as well, and data fusion attempts try using all data both as dependent and independent variables at the same time. This review limits itself to an exemplary discussion of simultaneous EEG/fMRI studies in humans, and among a variety of proposed resting state networks only discusses a few, especially those for which non-resting state literature has proposed a functional meaning: the "default mode" network and an attentional network. It will be shown that one EEG feature can correlate with different fMRI activation maps and that a single resting state network may be associated with a variety of EEG patterns giving insight into the function of different resting states and the relationship between the two modalities in themselves.
引用
收藏
页码:762 / 769
页数:8
相关论文
共 66 条
[31]   Linking generalized spike-and-wave discharges and resting state brain activity by using EEG/fMRI in a patient with absence seizures [J].
Laufs, H ;
Lengler, U ;
Hamandi, K ;
Kleinschmidt, A ;
Krakow, K .
EPILEPSIA, 2006, 47 (02) :444-448
[32]   Where the BOLD signal goes when alpha EEG leaves [J].
Laufs, H. ;
Holt, John L. ;
Elfont, Robert ;
Krams, Michael ;
Paul, Joseph S. ;
Krakow, K. ;
Kleinschmidt, A. .
NEUROIMAGE, 2006, 31 (04) :1408-1418
[33]   EEG-correlated fMRI of human alpha activity [J].
Laufs, H ;
Kleinschmidt, A ;
Beyerle, A ;
Eger, E ;
Salek-Haddadi, A ;
Preibisch, C ;
Krakow, K .
NEUROIMAGE, 2003, 19 (04) :1463-1476
[34]  
Laufs H., 2006, HUM BRAIN MAPP, V28, P1923
[35]  
LAUFS H, 2008, NEUROIMAGE IN PRESS, DOI DOI 10.1016/J.NEUROIMAGE.2007.11.039
[36]  
Laufs H, 2007, NEUROIMAGE IN PRESS
[37]   'Brain activation and hypothalamic functional connectivity during human non-rapid eye movement sleep: an EEG/fMRI study' - its limitations and an alternative approach [J].
Laufs, Helmut ;
Walker, Matthew C. ;
Lund, Torben E. .
BRAIN, 2007, 130
[38]   Electroencephalography/functional MRI in human epilepsy: what it currently can and cannot do [J].
Laufs, Helmut ;
Duncan, John S. .
CURRENT OPINION IN NEUROLOGY, 2007, 20 (04) :417-423
[39]   EEG-fMRI mapping of asymmetrical delta activity in a patient with refractory epilepsy is concordant with the epileptogenic region determined by intracranial EEG [J].
Laufs, Helmut ;
Hamandi, Khalid ;
Walker, Matthew C. ;
Scott, Catherine ;
Smith, Shelagh ;
Duncan, John S. ;
Lemieux, Louis .
MAGNETIC RESONANCE IMAGING, 2006, 24 (04) :367-371
[40]   Brain function in coma, vegetative state, and related disorders [J].
Laureys, S ;
Owen, AM ;
Schiff, ND .
LANCET NEUROLOGY, 2004, 3 (09) :537-546