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J Neurophysiol (December 15, 2004). doi:10.1152/jn.00721.2004
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Submitted on July 14, 2004
Accepted on December 8, 2004

Cortical and subcortical correlates of electroencephalographic alpha rhythm modulation

Bernd Feige1*, Klaus Scheffler1, Fabrizio Esposito1, Francesco Di Salle1, Juergen Hennig1, and Erich Seifritz1

1 Department of Psychiatry and Psychotherapy, University of Freiburg, Freiburg, Germany

* To whom correspondence should be addressed. E-mail: bernd.feige{at}uniklinik-freiburg.de.

Neural correlates of electroencephalographic (EEG) alpha rhythm are poorly understood. Here, we related EEG alpha rhythm in awake humans to blood oxygen level-dependent (BOLD) signal change determined by functional magnetic resonance imaging (fMRI). Topographical EEG was recorded simultaneously with fMRI during an open vs closed eyes and an auditory stimulation vs silence condition. EEG was separated into spatial components of maximal temporal independence using independent component analysis. Alpha component amplitudes and stimulus conditions served as general linear model regressors of the fMRI signal time course. In both paradigms, EEG alpha component amplitudes were associated with BOLD signal decreases in occipital areas, but not in thalamus, when a standard BOLD response curve (maximum effect at about 6~s) was assumed. The part of the alpha regressor independent of the protocol condition, however, revealed significant positive thalamic and mesencephalic correlations with a mean time delay of approximately 2.5~s between EEG and BOLD signals. The inverse relationship between EEG alpha amplitude and BOLD signals in primary and secondary visual areas suggests that widespread thalamocortical synchronization is associated with decreased brain metabolism. While the temporal relationship of this association is consistent with metabolic changes occurring simultaneously with changes in the alpha rhythm, sites in the medial thalamus and in the anterior midbrain were found to correlate with short time lag. Assuming a canonical hemodynamic response function, this finding is indicative of activity preceding the actual EEG change by some seconds.




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