Boosting Cortical Activity at Beta-Band Frequencies Slows Movement in Humans

被引:455
作者
Pogosyan, Alek [1 ]
Gaynor, Louise Doyle [1 ]
Eusebio, Alexandre [1 ]
Brown, Peter [1 ]
机构
[1] UCL, Sobell Dept Motor Neurosci & Movement Disorders, Inst Neurol, London WC1N 3BG, England
基金
英国惠康基金; 英国医学研究理事会;
关键词
HUMAN CORTICOSPINAL SYSTEM; TASK-DEPENDENT MODULATION; HZ OSCILLATORY SYNCHRONY; COHERENT OSCILLATIONS; ELECTRIC-FIELDS; CORTEX; PERFORMANCE; MECHANISM; STATE; HAND;
D O I
10.1016/j.cub.2009.07.074
中图分类号
Q5 [生物化学]; Q7 [分子生物学];
学科分类号
071010 ; 081704 ;
摘要
Neurons have a striking tendency to engage in oscillatory activities. One important type of oscillatory activity prevalent in the motor system occurs in the beta frequency band, at about 20 Hz. It is manifest during the maintenance of tonic contractions and is suppressed prior to and during voluntary movement [1-7]. This and other correlative evidence suggests that beta activity might promote tonic contraction, while impairing motor processing related to new movements [3, 8, 9]. Hence, bursts of beta activity in the cortex are associated with a strengthening of the motor effects of sensory feedback during tonic contraction and with reductions in the velocity of voluntary movements [9-11]. Moreover, beta activity is increased when movement has to be resisted or voluntarily suppressed [7, 12, 13]. Here we use imperceptible transcranial alternating-current stimulation to entrain cortical activity at 20 Hz in healthy subjects and show that this slows voluntary movement. The present findings are the first direct evidence of causality between any physiological oscillatory brain activity and concurrent motor behavior in the healthy human and help explain how the exaggerated beta activity found in Parkinson's disease can lead to motor slowing in this illness [14].
引用
收藏
页码:1637 / 1641
页数:5
相关论文
共 21 条
[11]   Task-dependent modulation of 15-30 Hz coherence between rectified EMGs from human hand and forearm muscles [J].
Kilner, JM ;
Baker, SN ;
Salenius, S ;
Jousmäki, V ;
Hari, R ;
Lemon, RN .
JOURNAL OF PHYSIOLOGY-LONDON, 1999, 516 (02) :559-570
[12]   Beta-range cortical motor spectral power and corticomuscular coherence as a mechanism for effective corticospinal interaction during steady-state motor output [J].
Kristeva, Rumyana ;
Patino, Luis ;
Omlor, Wolfgang .
NEUROIMAGE, 2007, 36 (03) :785-792
[13]   Event-related beta desynchronization in human subthalamic nucleus correlates with motor performance [J].
Kühn, AA ;
Williams, D ;
Kupsch, A ;
Limousin, P ;
Hariz, M ;
Schneider, GH ;
Yarrow, K ;
Brown, P .
BRAIN, 2004, 127 :735-746
[14]   Phasic increases in cortical beta activity are associated with alterations in sensory processing in the human [J].
Lalo, Elodie ;
Gilbertson, Thomas ;
Doyle, Louise ;
Di Lazzaro, Vincenzo ;
Cioni, Beatrice ;
Brown, Peter .
EXPERIMENTAL BRAIN RESEARCH, 2007, 177 (01) :137-145
[15]   CONTRIBUTION OF THE MONKEY CORTICOMOTONEURONAL SYSTEM TO THE CONTROL OF FORCE IN PRECISION GRIP [J].
MAIER, MA ;
BENNETT, KMB ;
HEPPREYMOND, MC ;
LEMON, RN .
JOURNAL OF NEUROPHYSIOLOGY, 1993, 69 (03) :772-785
[16]   Boosting slow oscillations during sleep potentiates memory [J].
Marshall, Lisa ;
Helgadottir, Halla ;
Moelle, Matthias ;
Born, Jan .
NATURE, 2006, 444 (7119) :610-613
[17]   Spike timing amplifies the effect of electric fields on neurons: Implications for endogenous field effects [J].
Radman, Thomas ;
Su, Yuzhuo ;
An, Je Hi ;
Parra, Lucas C. ;
Bikson, Marom .
JOURNAL OF NEUROSCIENCE, 2007, 27 (11) :3030-3036
[18]   Imaging the human motor system's beta-band synchronization during isometric contraction [J].
Schoffelen, Jan-Mathijs ;
Oostenveld, Robert ;
Fries, Pascal .
NEUROIMAGE, 2008, 41 (02) :437-447
[19]   Neuronal coherence as a mechanism of effective corticospinal interaction [J].
Schoffelen, JM ;
Oostenveld, R ;
Fries, P .
SCIENCE, 2005, 308 (5718) :111-113
[20]   Directional organization of sensorimotor oscillatory activity related to the electromyogram in the monkey [J].
Tsujimoto, Toru ;
Mima, Tatsuya ;
Shimazu, Hideki ;
Isomura, Yoshikazu .
CLINICAL NEUROPHYSIOLOGY, 2009, 120 (06) :1168-1173