Literature DB >> 7623293

Latency of effects evoked by electrical and magnetic brain stimulation in lower limb motoneurones in man.

J Nielsen1, N Petersen, M Ballegaard.   

Abstract

1. The latency of effects in the tibialis anterior (TA) and soleus (Sol) muscles evoked by electrical and magnetic stimulation of the motor cortex was evaluated in human subjects by H reflex testing. Post-stimulus time histograms (PSTHs) were established for the discharge of single voluntarily activated motor units and motor-evoked potentials (MEPs) in the surface electromyogram. 2. At rest both electrical and magnetic stimulation evoked an inhibition of the Sol H reflex at the lowest intensities of stimulation. In some subjects a facilitation with an earlier onset was seen when increasing the stimulation strength. When the anode for the electrical stimulation was placed at the vertex directly above the leg motor area, the inhibition or facilitation often had the same latency as when evoked by magnetic stimulation. However, when the anode was placed 2-3 cm lateral to the vertex, effects evoked by the electrical stimulus often occurred 1-2 ms earlier. 3. Short-latency peaks in the PSTH of the discharges of single TA motor units also tended to occur earlier when evoked by electrical stimulation with the anode lateral to the vertex than when evoked by magnetic stimulation or electrical stimulation with the anode at the vertex. 4. In one subject, near-maximal electrical stimulation evoked MEPs with a latency corresponding to that seen following stimulation of the brainstem by electrodes placed bilaterally over the mastoid processes approximately 16 cm more distal. Maximal magnetic stimulation, in contrast, never resulted in responses with a latency shorter than that seen with the weakest electrical stimuli at the vertex. 5. The initial facilitation of the Sol H reflex evoked by magnetic stimulation and by electrical anodal stimulation at the vertex increased when the subject performed a voluntary plantarflexion. In contrast, the earlier facilitation evoked by electrical anodal stimulation 2-3 cm lateral to the vertex had the same size both at rest and during contraction. 6. We suggest that magnetic stimulation and electrical anodal stimulation at the vertex may preferentially activate descending cortical cells at, or close to, the cell soma. The initial responses evoked by these two stimuli may therefore be influenced by the excitability of the cortical cells. On the other hand, electrical stimulation with the anode 2-3 cm lateral to the vertex seems to often activate the axons at a deeper level. The initial responses evoked by this type of stimulation may therefore not be influenced by the excitability of the cortical cells.

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Year:  1995        PMID: 7623293      PMCID: PMC1157961          DOI: 10.1113/jphysiol.1995.sp020704

Source DB:  PubMed          Journal:  J Physiol        ISSN: 0022-3751            Impact factor:   5.182


  20 in total

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2.  Effect of digital nerve stimuli on responses to electrical or magnetic stimulation of the human brain.

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3.  A comparison of corticospinal activation by magnetic coil and electrical stimulation of monkey motor cortex.

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4.  A theoretical comparison of electric and magnetic stimulation of the brain.

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5.  Changes in the response to magnetic and electrical stimulation of the motor cortex following muscle stretch in man.

Authors:  B L Day; H Riescher; A Struppler; J C Rothwell; C D Marsden
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6.  Motor cortex stimulation in intact man. 2. Multiple descending volleys.

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Authors:  D Burke; R Hicks; S C Gandevia; J Stephen; I Woodforth; M Crawford
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8.  Evidence for interneuronally mediated Ia excitatory effects to human quadriceps motoneurones.

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9.  Cortical modulation of transmission in spinal reflex pathways of man.

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Authors:  J Nielsen; N Petersen; G Deuschl; M Ballegaard
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  32 in total

1.  Transcranial magnetic stimulation and stretch reflexes in the tibialis anterior muscle during human walking.

Authors:  L O Christensen; J B Andersen; T Sinkjaer; J Nielsen
Journal:  J Physiol       Date:  2001-03-01       Impact factor: 5.182

2.  Suppression of EMG activity by transcranial magnetic stimulation in human subjects during walking.

Authors:  N T Petersen; J E Butler; V Marchand-Pauvert; R Fisher; A Ledebt; H S Pyndt; N L Hansen; J B Nielsen
Journal:  J Physiol       Date:  2001-12-01       Impact factor: 5.182

3.  Statistical test for peri-stimulus time histograms in assessing motor neuron activity.

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4.  The effects of transcranial magnetic stimulation on vibratory-induced presynaptic inhibition of the soleus H reflex.

Authors:  Jessica Guzmán-López; João Costa; Aikaterini Selvi; Gonzalo Barraza; Jordi Casanova-Molla; Josep Valls-Solé
Journal:  Exp Brain Res       Date:  2012-05-29       Impact factor: 1.972

5.  The nature of corticospinal paths driving human motoneurones during voluntary contractions.

Authors:  Jane E Butler; Thomas S Larsen; Simon C Gandevia; Nicolas T Petersen
Journal:  J Physiol       Date:  2007-08-16       Impact factor: 5.182

6.  Soleus H-reflex modulation during body weight support treadmill walking in spinal cord intact and injured subjects.

Authors:  Maria Knikou; Claudia A Angeli; Christie K Ferreira; Susan J Harkema
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7.  Interlimb communication to the knee flexors during walking in humans.

Authors:  Andrew J T Stevenson; Svend S Geertsen; Jacob B Andersen; Thomas Sinkjær; Jens B Nielsen; Natalie Mrachacz-Kersting
Journal:  J Physiol       Date:  2013-08-05       Impact factor: 5.182

8.  The effect of transcranial magnetic stimulation on the soleus H reflex during human walking.

Authors:  N Petersen; L O Christensen; J Nielsen
Journal:  J Physiol       Date:  1998-12-01       Impact factor: 5.182

9.  Evidence that a transcortical pathway contributes to stretch reflexes in the tibialis anterior muscle in man.

Authors:  N Petersen; L O Christensen; H Morita; T Sinkjaer; J Nielsen
Journal:  J Physiol       Date:  1998-10-01       Impact factor: 5.182

10.  Cortical involvement in anticipatory postural reactions in man.

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