Neurophysiology of unimanual motor control and mirror movements

被引:160
作者
Cincotta, M. [1 ]
Ziemann, U. [2 ]
机构
[1] Osped Piero Palagi, Azienda Sanit Firenze, Unita Operat Neurol, I-50125 Florence, Italy
[2] Goethe Univ Frankfurt, Neurol Klin, Frankfurt, Germany
关键词
mirror movements; motor control; motor overflow; Parkinson's disease; surface EMG; transcranial magnetic stimulation;
D O I
10.1016/j.clinph.2007.11.047
中图分类号
R74 [神经病学与精神病学];
学科分类号
摘要
In humans, execution of unimanual motor tasks requires a neural network that is capable of restricting neuronal motor output activity to the primary motor cortex (M1) contralateral to the voluntary movement by counteracting the default propensity to produce mirror-symmetrical bimanual movements. The motor command is transmitted from the M I to the contralateral spinal motoneurons by a largely crossed system of fast-conducting corticospinal neurons. Alteration or even transient dysfunction of the neural circuits underlying movement lateralization may result in involuntary mirror movements (MM). Different models exist, which have attributed MM to unintended motor output from the M1 ipsilateral to the voluntary movement, functionally active uncrossed corticospinal projections, or on a combination of both. Over the last two decades, transcranial magnetic stimulation (TMS) proved as a valuable, non-invasive neurophysiological tool to investigate motor control in healthy volunteers and neurological patients. The contribution of TMS and other non-invasive electrophysiological techniques to characterize the neural network responsible for the so-called 'non-mirror transformation' of motor programs and the various mechanisms underlying 'physiological' mirroring, and congenital or acquired pathological MM are the focus of this review. (c) 2007 International Federation of Clinical Neurophysiology. Published by Elsevier Ireland Ltd. All rights reserved.
引用
收藏
页码:744 / 762
页数:19
相关论文
共 172 条
[11]   Absence of the cervical spine [J].
Bauman, GI .
JOURNAL OF THE AMERICAN MEDICAL ASSOCIATION, 1932, 98 :129-132
[12]   Pathophysiology of bradykinesia in Parkinson's disease [J].
Berardelli, A ;
Rothwell, JC ;
Thompson, PD ;
Hallet, M .
BRAIN, 2001, 124 :2131-2146
[13]   Age and features of movement influence motor overflow [J].
Bodwell, JA ;
Mahurin, RK ;
Waddle, S ;
Price, R ;
Cramer, SC .
JOURNAL OF THE AMERICAN GERIATRICS SOCIETY, 2003, 51 (12) :1735-1739
[14]   Transcallosal inhibition and motor conduction studies in patients with schizophrenia using transcranial magnetic stimulation [J].
Boroojerdi, B ;
Töpper, R ;
Foltys, H ;
Meincke, U .
BRITISH JOURNAL OF PSYCHIATRY, 1999, 175 :375-379
[15]  
BRINKMAN C, 1984, J NEUROSCI, V4, P918
[16]   EVIDENCE FOR A CONTRIBUTION OF THE MOTOR CORTEX TO THE LONG-LATENCY STRETCH REFLEX OF THE HUMAN THUMB [J].
CAPADAY, C ;
FORGET, R ;
FRASER, R ;
LAMARRE, Y .
JOURNAL OF PHYSIOLOGY-LONDON, 1991, 440 :243-255
[17]   PATTERNS OF CENTRAL MOTOR REORGANIZATION IN HEMIPLEGIC CEREBRAL-PALSY [J].
CARR, LJ ;
HARRISON, LM ;
EVANS, AL ;
STEPHENS, JA .
BRAIN, 1993, 116 :1223-1247
[18]   Neural pathways mediating bilateral interactions between the upper limbs [J].
Carson, RG .
BRAIN RESEARCH REVIEWS, 2005, 49 (03) :641-662
[19]  
CERNACEK J, 1961, ARCH NEUROL-CHICAGO, V4, P61
[20]   LEFT-HANDED MIRROR WRITING FOLLOWING RIGHT ANTERIOR CEREBRAL-ARTERY INFARCTION - EVIDENCE FOR NONMIRROR TRANSFORMATION OF MOTOR PROGRAMS BY RIGHT SUPPLEMENTARY MOTOR AREA [J].
CHAN, JL ;
ROSS, ED .
NEUROLOGY, 1988, 38 (01) :59-63