Changes in the alpha and beta amplitudes of the central EEG during the onset, continuation, and offset of long-duration repetitive hand movements

被引:78
作者
Erbil, Nurhan [1 ]
Ungan, Pekcan [1 ]
机构
[1] Univ Hacettepe, Fac Med, Dept Biophys, TR-06100 Ankara, Turkey
关键词
ERD; ERS; mu rhythm; alpha band; beta rhythm; habituation; continuous movement;
D O I
10.1016/j.brainres.2007.07.014
中图分类号
Q189 [神经科学];
学科分类号
071006 ;
摘要
Electroencephalographic alpha and beta activities recorded from central electrodes are known to display movement-related suppression or enhancement. We investigated whether the suppression that is known to occur during the onset of a single movement would persist or otherwise habituate when the movement is continuously repeated for a long period of time. Fourteen subjects took part in the experiments. They performed repetitive simultaneous extension-flexions of the fingers II-V in one hand, continuously for a period of at least 30 s. They then stopped this self-paced movement and rested for at least 30 s. Bipolar recording was made from C3-Cz and C4-Cz. Patterns of amplitude changes in the alpha and beta bands were calculated against a resting baseline. Following a bilateral alpha and beta suppression at the movement onset, alpha amplitude gradually but not fully recovered towards the baseline during the 30 s post-onset. Habituation of afferences and transfer of the cortical function were discussed as the two alternative explanations for this gradual recovery. Beta amplitude, however, displayed no recovery as long as the movement continued. Considering the relatively rapid beta recovery reported for sustained movements, this finding demonstrated that the sustained and continuous movements are conducted through quite different processes. A transient contralateral beta rebound was observed only after the end of the long movement period, strengthening the viewpoint that links the beta rebound with the closure of the cortical processes running throughout a motor sequence. Modulation of the beta amplitude, rather than the changes in alpha amplitude, appeared to be more closely correlated with the execution of a continuous movement. (C) 2007 Elsevier B.V. All rights reserved.
引用
收藏
页码:44 / 56
页数:13
相关论文
共 65 条
[1]   Alpha and beta oscillatory activity during a sequence of two movements [J].
Alegre, M ;
de Gurtubay, IG ;
Labarga, A ;
Iriarte, J ;
Malanda, A ;
Artieda, J .
CLINICAL NEUROPHYSIOLOGY, 2004, 115 (01) :124-130
[2]   Movement-related changes in cortical oscillatory activity in ballistic, sustained and negative movements [J].
Alegre, M ;
Labarga, A ;
Gurtubay, IG ;
Iriarte, J ;
Malanda, A ;
Artieda, J .
EXPERIMENTAL BRAIN RESEARCH, 2003, 148 (01) :17-25
[3]   Beta electroencephalograph changes during passive movements: sensory afferences contribute to beta event-related desynchronization in humans [J].
Alegre, M ;
Labarga, A ;
Gurtubay, IG ;
Iriarte, J ;
Malanda, A ;
Artieda, J .
NEUROSCIENCE LETTERS, 2002, 331 (01) :29-32
[4]  
ANDREW C, 1995, IEEE 17 ANN C, V2, P855
[5]  
[Anonymous], 1999, HANDB EL CL
[6]  
Burgess A. P., 1999, HANDB EL CL, VVol. 6, P139
[7]   Brief and sustained movements: differences in event-related (de)synchronization (ERD/ERS) patterns [J].
Cassim, F ;
Szurhaj, W ;
Sediri, H ;
Devos, D ;
Bourriez, JL ;
Poirot, I ;
Derambure, P ;
Defebvre, L ;
Guieu, JD .
CLINICAL NEUROPHYSIOLOGY, 2000, 111 (11) :2032-2039
[8]   Time course of corticospinal excitability in reaction time and self-paced movements [J].
Chen, R ;
Yaseen, Z ;
Cohen, LG ;
Hallett, M .
ANNALS OF NEUROLOGY, 1998, 44 (03) :317-325
[9]   A new method for quantifying EEG event-related desynchronization: Amplitude envelope analysis [J].
Clochon, P ;
Fontbonne, JM ;
Lebrun, N ;
Etevenon, P .
ELECTROENCEPHALOGRAPHY AND CLINICAL NEUROPHYSIOLOGY, 1996, 98 (02) :126-129
[10]   Synchronization between motor cortex and spinal motoneuronal pool during the performance of a maintained motor task in man [J].
Conway, BA ;
Halliday, DM ;
Farmer, SF ;
Shahani, U ;
Maas, P ;
Weir, AI ;
Rosenberg, JR .
JOURNAL OF PHYSIOLOGY-LONDON, 1995, 489 (03) :917-924