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Brenda Brouwer, Juan Qiao (1995)
Characteristics and variability of lower limb motoneuron responses to transcranial magnetic stimulation.Electroencephalography and clinical neurophysiology, 97 1
W. Löscher, A. Cresswell, A. Thorstensson (1994)
Electromyographic responses of the human triceps surae and force tremor during sustained submaximal isometric plantar flexion.Acta physiologica Scandinavica, 152 1
J. Rothwell, P. Thompson, B. Day, S. Boyd, C. Marsden (1991)
Stimulation of the human motor cortex through the scalpExperimental Physiology, 76
R. Lemon, RS Johansson, G. Westling (1995)
Corticospinal control during reach, grasp, and precision lift in man, 15
J. Nielsen, N. Petersen, G. Deuschl, M. Ballegaard (1993)
Task‐related changes in the effect of magnetic brain stimulation on spinal neurones in man.The Journal of Physiology, 471
U. Kischka, Radko Fajfr, Theodor Fellenberg, C. Hess (1993)
Facilitation of motor evoked potentials from magnetic brain stimulation in man: a comparative study of different target muscles.Journal of clinical neurophysiology : official publication of the American Electroencephalographic Society, 10 4
A. Amos, D. Armstrong, D. Marple‐Horvat (1990)
Changes in the discharge patterns of motor cortical neurones associated with volitional changes in stepping in the catNeuroscience Letters, 109
S. Baker, E. Olivier, R. Lemon (1995)
Task‐related variation in corticospinal output evoked by transcranial magnetic stimulation in the macaque monkey.The Journal of Physiology, 488
C. Hess, K. Mills, N. Murray (1987)
Responses in small hand muscles from magnetic stimulation of the human brain.The Journal of Physiology, 388
S. Grillner (1981)
Control of Locomotion in Bipeds, Tetrapods, and FishComprehensive Physiology
A. Barker, R. Jalinous, I. Freeston (1985)
NON-INVASIVE MAGNETIC STIMULATION OF HUMAN MOTOR CORTEXThe Lancet, 325
V. Dietz, G. Colombo, L. Jensen (1994)
Locomotor activity in spinal manThe Lancet, 344
J. Valls-Solé, R. Alvarez, Eduardo Tolosa (1994)
Responses of the soleus muscle to transcranial magnetic stimulation.Electroencephalography and clinical neurophysiology, 93 6
Volker Dietz, G. Horstmann, Wiltrud Berger (1989)
Interlimb coordination of leg-muscle activation during perturbation of stance in humans.Journal of neurophysiology, 62 3
I. Beloozerova, M. Sirota (1988)
Role of Motor Cortex in Control of Locomotion
Maurizio Inghilleri, A. Berardelli, G. Cruccu, M. Manfredi (1993)
Silent period evoked by transcranial stimulation of the human cortex and cervicomedullary junction.The Journal of Physiology, 466
J. Brooke, J. Cheng, J. Misiaszek, K. Lafferty (1995)
Amplitude modulation of the soleus H reflex in the human during active and passive stepping movements.Journal of neurophysiology, 73 1
Ioffe Me (1973)
Supraspinal influences on spinal mechanisms activated prior to learned movement.Acta Neurobiologiae Experimentalis, 33
T. Drew (1991)
Visuomotor coordination in locomotionCurrent Opinion in Neurobiology, 1
D. Armstrong (1986)
Supraspinal contributions to the initiation and control of locomotion in the catProgress in Neurobiology, 26
J. Nielsen, N. Petersen (1994)
Is presynaptic inhibition distributed to corticospinal fibres in man?The Journal of Physiology, 477
J. Nielsen, Nicolas Petersen (1995)
Changes in the effect of magnetic brain stimulation accompanying voluntary dynamic contraction in man.The Journal of Physiology, 484
BY Dietz, J. Quintern, M. Sillem (1987)
Stumbling reactions in man: significance of proprioceptive and pre‐programmed mechanisms.The Journal of Physiology, 386
A. Schnitzler, R. Benecke (1994)
The silent period after transcranial magnetic stimulation is of exclusive cortical origin: evidence from isolated cortical ischemic lesions in manNeuroscience Letters, 180
A. Starr, M. Caramia, F. Zarola, P. Rossini (1988)
Enhancement of motor cortical excitability in humans by non-invasive electrical stimulation appears prior to voluntary movement.Electroencephalography and clinical neurophysiology, 70 1
P. Rossini, F. Zarola, E. Stålberg, M. Caramia (1988)
Pre-movement facilitation of motor-evoked potentials in man during transcranial stimulation of the central motor pathwaysBrain Research, 458
L. Nashner, H. Forssberg (1986)
Phase-dependent organization of postural adjustments associated with arm movements while walking.Journal of neurophysiology, 55 6
V. Brooks, S. Stoney (1971)
Motor mechanisms: the role of the pyramidal system in motor control.Annual review of physiology, 33
G. Gottlieb, G. Agarwal, L. Stark (1970)
Interactions between voluntary and postural mechanisms of thehuman motor system.Journal of neurophysiology, 33 3
V. Dietz (1992)
Human neuronal control of automatic functional movements: interaction between central programs and afferent input.Physiological reviews, 72 1
D. Kernell, H. Hultborn (1990)
Synaptic effects on recruitment gain: a mechanism of importance for the input-output relations of motoneurone pools?Brain Research, 507
M. Hallett, L. Cohen, S. Bierner (1991)
Studies of sensory and motor cortex physiology: with observations on akinesia in Parkinson's disease.Electroencephalography and clinical neurophysiology. Supplement, 43
H. Ackermann, E. Scholz, W. Koêhler, J. Dichgans (1991)
Influence of posture and voluntary background contraction upon compound muscle action potentials from anterior tibial and soleus muscle following transcranial magnetic stimulation.Electroencephalography and clinical neurophysiology, 81 1
Transcranial magnetic stimulation (TMS) of the motor cortex was applied during locomotion to investigate the significance of corticospinal input upon the gait pattern. Evoked motor responses (EMR) were studied in the electromyogram (EMG) of tibialis anterior (TA), gastrocnemius (GM) and, for reference, abductor digiti minimi (AD) muscles by applying below-threshold magnetic stimuli during treadmill walking in healthy adults. Averages of 15 stimuli introduced randomly at each of 16 phases of the stride cycle were analysed. Phase-dependent amplitude modulation of EMR was present in TA and GM which did not always parallel the gait-associated modulation of the EMG activity. No variation of onset latency of the EMR was observed. The net modulatory response was calculated by comparing EMR amplitudes during gait with EMR amplitudes obtained (at corresponding background EMG activities) during tonic voluntary muscle contraction. Large net responses in both muscles occurred prior to or during phasic changes of EMG activity in the locomotor pattern. This facilitation of EMR was significantly higher in leg flexor than extensor muscles, with maxima in TA prior to and during late swing phase. A comparison of this facilitation of TA EMR prior to swing phase and prior to a phasic voluntary foot dorsiflexion revealed a similar onset but an increased amount of early facilitation in the gait condition. The modulated facilitation of EMR during locomotion could in part be explained by spinal effects which are different under dynamic and static motor conditions. However, we suggest that changes in corticospinal excitability during gait are also reflected in this facilitation. This suggestion is based on: (1) the similar onset yet dissimilar size of facilitatory effects in TA EMR prior to the swing phase of the stride cycle and during a voluntary dynamic activation, (2) the inverse variation of EMR and EMG amplitudes during this phase, and (3) the occurrence of this inversion at stimulation strengths below motor threshold (motor threshold was determined during weak tonic contraction and EMR were facilitated during gait). It is hypothesized that the facilitation is phase linked to ensure postural stability and is most effective during the phases prior to and during rhythmical activation of the leg muscles resulting in anticipatory adjustment of the locomotor pattern.
Experimental Brain Research – Springer Journals
Published: Jun 1, 1997
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