Studies on the corticospinal control of human walking. I. Responses to focal transcranial magnetic stimulation of the motor cortex

被引:281
作者
Capaday, C [1 ]
Lavoie, BA [1 ]
Barbeau, H [1 ]
Schneider, C [1 ]
Bonnard, M [1 ]
机构
[1] Univ Laval, Dept Anat & Physiol, Ctr Rech, Quebec City, PQ H3G 1Y5, Canada
关键词
D O I
10.1152/jn.1999.81.1.129
中图分类号
Q189 [神经科学];
学科分类号
071006 ;
摘要
Experiments were done to determine the extent to which the corticospinal tract is linked with the segmental motor circuits controlling ankle flexors and extensors during human walking compared with voluntary motor tasks requiring attention to the level of motor activity. The motor cortex was activated transcranially using a focal magnetic stimulation coil. For each subject, the entire input-output (I-O) curve [i.e., the integral of the motor evoked-potential (MEP) versus stimulus strength] was measured during a prescribed tonic voluntary contraction of either the tibialis anterior (TA) or the soleus. Similarly, I-O curves were measured in the early part of the swing phase, or in the early part of the stance phase of walking. The I-O data points were fitted by the Boltzmann sigmoidal function, which accounted for greater than or equal to 80% of total data variance. There was no statistically significant difference between the I-O curves of the TA measured during voluntary ankle dorsiflexion or during the swing phase of walking, at matched levels of background electromyographic (EMG) activity. Additionally, there was no significant difference in the relation between the coefficient of variation and the amplitude of the MEPs measured in each task, respectively. In comparison, during the stance phase of walking the soleus MEPs were reduced on average by 26% compared with their size during voluntary ankle plantarflexion. Furthermore, during stance the MEPs in the inactive TA were enhanced relative to their size during voluntary ankle plantarflexion and in four of six subjects the TA MEPs were larger than those of the soleus. Finally, stimulation of the motor cortex at various phases of the step cycle did not reset the cycle. The time of the next step occurred at the expected moment, as determined from the phase-resetting curve. One interpretation of this result is that the motor cortex may not be part of the central neural system involved in timing the motor bursts during the step cycle. We suggest that during walking the corticospinal tract is more closely linked with the segmental motor circuits controlling the flexor, TA, than it is with those controlling the extensor, soleus. However, during voluntary tasks requiring attention to the level of motor activity, it is equally linked with the segmental motor circuits of ankle flexors or extensors.
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页码:129 / 139
页数:11
相关论文
共 40 条
[1]   RESPONSE OF ARM FLEXOR MUSCLES TO MAGNETIC AND ELECTRICAL BRAIN-STIMULATION DURING SHORTENING AND LENGTHENING TASKS IN MAN [J].
ABBRUZZESE, G ;
MORENA, M ;
SPADAVECCHIA, L ;
SCHIEPPATI, M .
JOURNAL OF PHYSIOLOGY-LONDON, 1994, 481 (02) :499-507
[2]  
AMASSIAN VE, 1979, INTEGRATION NERVOUS, P279
[3]   HINDLIMB MUSCLE FIBER POPULATIONS OF 5 MAMMALS [J].
ARIANO, MA ;
ARMSTRONG, RB ;
EDGERTON, VR .
JOURNAL OF HISTOCHEMISTRY & CYTOCHEMISTRY, 1973, 21 (01) :51-55
[4]   SUPRASPINAL CONTRIBUTIONS TO THE INITIATION AND CONTROL OF LOCOMOTION IN THE CAT [J].
ARMSTRONG, DM .
PROGRESS IN NEUROBIOLOGY, 1986, 26 (04) :273-361
[5]   LOCOMOTOR-RELATED NEURONAL DISCHARGES IN CAT MOTOR CORTEX COMPARED WITH PERIPHERAL RECEPTIVE-FIELDS AND EVOKED MOVEMENTS [J].
ARMSTRONG, DM ;
DREW, T .
JOURNAL OF PHYSIOLOGY-LONDON, 1984, 346 (JAN) :497-517
[6]   Neurophysiological methods for studies of the motor system in freely moving human subjects [J].
Capaday, C .
JOURNAL OF NEUROSCIENCE METHODS, 1997, 74 (02) :201-218
[7]  
Capaday C., 1996, Society for Neuroscience Abstracts, V22, P1850
[8]   TASK-DEPENDENT CHANGES IN THE SIZE OF RESPONSE TO MAGNETIC BRAIN-STIMULATION IN HUMAN 1ST DORSAL INTEROSSEOUS MUSCLE [J].
DATTA, AK ;
HARRISON, LM ;
STEPHENS, JA .
JOURNAL OF PHYSIOLOGY-LONDON, 1989, 418 :13-23
[9]   Input-output properties and gain changes in the human corticospinal pathway [J].
Devanne, H ;
Lavoie, BA ;
Capaday, C .
EXPERIMENTAL BRAIN RESEARCH, 1997, 114 (02) :329-338
[10]   MOTOR CORTICAL ACTIVITY DURING VOLUNTARY GAIT MODIFICATIONS IN THE CAT .1. CELLS RELATED TO THE FORELIMBS [J].
DREW, T .
JOURNAL OF NEUROPHYSIOLOGY, 1993, 70 (01) :179-199