Aktuelle Neurologie 2001; 28(6): 249-264
DOI: 10.1055/s-2001-16677
NEUES IN DER NEUROLOGIE
Neues in der Neurologie
© Georg Thieme Verlag Stuttgart · New York

Transkranielle Magnetstimulation: Neue Einsatzmöglichkeiten zur Messung kortikaler und kortikospinaler Erregbarkeit

Transcranial Magnetic Stimulation: New Applications to Measure Cortical and Corticospinal ExcitabilityU. Ziemann
  • Klinik für Neurologie, J.-W.-Goethe-Universität Frankfurt (Direktor: Prof. Dr. med. H. Steinmetz)
Further Information

Publication History

Publication Date:
27 August 2001 (online)

Zusammenfassung

Die transkranielle Magnetstimulation (TMS) ist eine noch relativ neue Methode zur schmerzfreien und nichtinvasiven Reizung des Kortex, die in der neurophysiologischen Routineuntersuchung ganz überwiegend zur Messung der zentralmotorischen Leitungszeit und damit zur Erfassung der Integrität des kortikospinalen Traktes eingesetzt wird. Methodische Erweiterungen haben jetzt ein ganzes Szenario neuer Einsatzmöglichkeiten eröffnet. In dieser Übersicht werden vor allem Methoden zur exakten Bestimmung eines zentralen Leitungsblocks und zur fraktionierten Leitungszeitmessung entlang begrenzter Segmente des kortikospinalen Traktes sowie zahlreiche Techniken zur Messung motorkortikaler und kortikospinaler Erregbarkeit beschrieben. Der derzeitige Stellenwert dieser neuen TMS-Methoden wird durch die Besprechung der verfügbaren Patientendaten bewertet.

Transcranial Magnetic Stimulation: New Applications to Measure Cortical and Corticospinal Excitability

Transcranial magnetic stimulation (TMS) is a still relatively new method to stimulate the human cortex painlessly and non-invasively. In the neurophysiological routine situation, TMS was and is still used mainly for measurement of the central motor conduction time in order to evaluate the integrity of the corticospinal tract. Methodological improvement and innovation has now opened numerous opportunities for novel applications. This review will describe techniques to measure exactly central conduction block and fractionated conduction time along restricted segments of the corticospinal tract. Furthermore, several protocols will be discussed that allow the measurement of motor cortical and corticospinal excitability. The value of these novel techniques will be demonstrated by a survey of the available data in neurological patients.

Literatur

  • 1 Barker A T, Jalinous R, Freeston I L. Non-invasive magnetic stimulation of human motor cortex (letter).  Lancet. 1985;  1 1106-1107
  • 2 Barker A T, Freeston I L, Jalinous R. et al . Magnetic stimulation of the human brain (abstract).  J Physiol. 1985;  369 3P
  • 3 Barker A T, Freeston I L, Jalinous R, Jarratt J A. Clinical evaluation of conduction time measurements in central motor pathways using magnetic stimulation of human brain (letter).  Lancet. 1986;  1 1325-1326
  • 4 Barker A T, Freeston I L, Jalinous R, Jarratt J A. Magnetic stimulation of the human brain and peripheral nervous system: an introduction and the results of an initial clinical evaluation.  Neurosurgery. 1987;  20 100-109
  • 5 Robinson L R, Jantra P, MacLean I C. Central motor conduction times using transcranial stimulation and F wave latencies.  Muscle Nerve. 1988;  11 174-180
  • 6 Ofuji A, Kaneko K, Taguchi T. et al . New method to measure central motor conduction time using transcranial magnetic stimulation and T-response.  J Neurol Sci. 1998;  160 26-32
  • 7 Evans B A, Daube J R, Litchy W J. A comparison of magnetic and electrical stimulation of spinal nerves.  Muscle Nerve. 1990;  13 414-420
  • 8 Schmid U D, Walker G, Schmid-Sigron J, Hess C W. Transcutaneous magnetic and electrical stimulation over the cervical spine: excitation of plexus roots-rather than spinal roots.  Electroencephalogr Clin Neurophysiol Suppl. 1991;  43 369-384
  • 9 Epstein C M, Fernandez-Beer E, Weissman J D, Matsuura S. Cervical magnetic stimulation: the role of the neural foramen.  Neurology. 1991;  41 677-680
  • 10 Maccabee P J, Amassian V E, Eberle L P. et al . Measurement of the electric field induced into inhomogeneous volume conductors by magnetic coils: application to human spinal neurogeometry.  Electroencephalogr Clin Neurophysiol. 1991;  81 224-237
  • 11 Britton T C, Meyer B U, Herdmann J, Benecke R. Clinical use of the magnetic stimulator in the investigation of peripheral conduction time.  Muscle Nerve. 1990;  13 396-406
  • 12 Chokroverty S, Picone M A, Chokroverty M. Percutaneous magnetic coil stimulation of human cervical vertebral column: site of stimulation and clinical application.  Electroencephalogr Clin Neurophysiol. 1991;  81 359-365
  • 13 Ugawa Y, Rothwell J C, Day B L. et al . Magnetic stimulation over the spinal enlargements.  J Neurol Neurosurg Psychiatry. 1989;  52 1025-1032
  • 14 Chokroverty S, Flynn D, Picone M A. et al . Magnetic coil stimulation of the human lumbosacral vertebral column: site of stimulation and clinical application.  Electroencephalogr Clin Neurophysiol. 1993;  89 54-60
  • 15 Rothwell J C, Hallett M, Berardelli A. et al . Magnetic stimulation: motor evoked potentials. The International Federation of Clinical Neurophysiology.  Electroencephalogr Clin Neurophysiol. 1999;  52, Suppl 97-103
  • 16 Hess C W, Mills K R, Murray N M. Magnetic stimulation of the human brain: facilitation of motor responses by voluntary contraction of ipsilateral and contralateral muscles with additional observations on an amputee.  Neurosci Lett. 1986;  71 235-240
  • 17 Rothwell J C, Thompson P D, Day B L. et al . Motor cortex stimulation in intact man. 1. General characteristics of EMG responses in different muscles.  Brain. 1987;  110 1173-1190
  • 18 Merton P A, Morton H B. Stimulation of the cerebral cortex in the intact human subject.  Nature. 1980;  285 227
  • 19 Hess C W, Mills K R, Murray N M. Responses in small hand muscles from magnetic stimulation of the human brain.  J Physiol. 1987;  388 397-419
  • 20 Rothwell J C, Thompson P D, Day B L. et al . Stimulation of the human motor cortex through the scalp.  Exp Physiol. 1991;  76 159-200
  • 21 Rothwell J C. Techniques and mechanisms of action of transcranial stimulation of the human motor cortex.  J Neurosci Methods. 1997;  74 113-122
  • 22 Rossini P M, Barker A T, Berardelli A. et al . Non-invasive electrical and magnetic stimulation of the brain, spinal cord and roots: basic principles and procedures for routine clinical application. Report of an IFCN committee.  Electroencephalogr Clin Neurophysiol. 1994;  91 79-92
  • 23 Rossini P M, Berardelli A, Deuschl G. et al . Applications of magnetic cortical stimulation. The International Federation of Clinical Neurophysiology.  Electroencephalogr Clin Neurophysiol. 1999;  52, Suppl 171-185
  • 24 Kiers L, Clouston P, Chiappa K H, Cros D. Assessment of cortical motor output: compound muscle action potential versus twitch force recording.  Electroencephalogr Clin Neurophysiol. 1995;  97 131-139
  • 25 Devanne H, Lavoie B A, Capaday C. Input-output properties and gain changes in the human corticospinal pathway.  Exp Brain Res. 1997;  114 329-338
  • 26 Kischka U, Fajfr R, Fellenberg T, Hess C W. Facilitation of motor evoked potentials from magnetic brain stimulation in man: a comparative study of different target muscles.  J Clin Neurophysiol. 1993;  10 505-512
  • 27 Pereon Y, Genet R, Guiheneuc P. Facilitation of motor evoked potentials: timing of Jendrassik maneuver effects.  Muscle Nerve. 1995;  18 1427-1432
  • 28 Stedman A, Davey N J, Ellaway P H. Facilitation of human first dorsal interosseous muscle responses to transcranial magnetic stimulation during voluntary contraction of the contralateral homonymous muscle.  Muscle Nerve. 1998;  21 1033-1039
  • 29 Boroojerdi B, Battaglia F, Muellbacher W, Cohen L G. Voluntary teeth clenching facilitates human motor system excitability.  Clin Neurophysiol. 2000;  111 988-993
  • 30 Chen R, Tam A, Butefisch C. et al . Intracortical inhibition and facilitation in different representations of the human motor cortex.  J Neurophysiology. 1998;  80 2870-2881
  • 31 Cowan J M, Day B L, Marsden C, Rothwell J C. The effect of percutaneous motor cortex stimulation on H reflexes in muscles of the arm and leg in intact man.  J Physiol. 1986;  377 333-347
  • 32 Palmer E, Ashby P. Corticospinal projections to upper limb motoneurones in humans.  J Physiol. 1992;  448 397-412
  • 33 Maertens de Noordhout A, Rapisarda G, Bogacz D. et al . Corticomotoneuronal synaptic connections in normal man: An electrophysiological study.  Brain. 1999;  122 1327-1340
  • 34 Kiers L, Cros D, Chiappa K H, Fang J. Variability of motor potentials evoked by transcranial magnetic stimulation.  Electroencephalogr Clin Neurophysiol. 1993;  89 415-423
  • 35 van der Kamp W, Zwinderman A H, Ferrari M D, van Dijk J G. Cortical excitability and response variability of transcranial magnetic stimulation.  J Clin Neurophysiol. 1996;  13 164-171
  • 36 Ellaway P H, Davey N J, Maskill D W. et al . Variability in the amplitude of skeletal muscle responses to magnetic stimulation of the motor cortex in man.  Electroencephalogr Clin Neurophysiol. 1998;  109 104-113
  • 37 Day B L, Rothwell J C, Thompson P D. et al . Motor cortex stimulation in intact man. 2. Multiple descending volleys.  Brain. 1987;  110 1191-1209
  • 38 Magistris M R, Rosler K M, Truffert A, Myers J P. Transcranial stimulation excites virtually all motor neurons supplying the target muscle. A demonstration and a method improving the study of motor evoked potentials.  Brain. 1998;  121 437-450
  • 39 Claus D. Motorisch evozierte Potentiale (MEP). In: Lowitzsch K, Hopf HC, Buchner H et al (Hrsg) Das EP-Buch. Stuttgart; Georg Thieme Verlag 2000: 173-232
  • 40 Cowan J M, Rothwell J C, Dick J P. et al . Abnormalities in central motor pathway conduction in multiple sclerosis.  Lancet. 1984;  2 304-307
  • 41 Hess C W, Mills K R, Murray N M. Measurement of central motor conduction in multiple sclerosis by magnetic brain stimulation.  Lancet. 1986;  2 355-358
  • 42 Hess C W, Mills K R, Murray N M, Schriefer T N. Magnetic brain stimulation: central motor conduction studies in multiple sclerosis.  Ann Neurol. 1987;  22 744-752
  • 43 Ingram D A, Thompson A J, Swash M. Central motor conduction in multiple sclerosis: evaluation of abnormalities revealed by transcutaneous magnetic stimulation of the brain.  J Neurol Neurosurg Psychiatry. 1988;  51 487-494
  • 44 Britton T C, Meyer B U, Benecke R. Variability of cortically evoked motor responses in multiple sclerosis.  Electroencephalogr Clin Neurophysiol. 1991;  81 186-194
  • 45 Jones S M, Streletz L J, Raab V E. et al . Lower extremity motor evoked potentials in multiple sclerosis.  Arch Neurol. 1991;  48 944-948
  • 46 Kandler R H, Jarratt J A, Gumpert E J. et al . The role of magnetic stimulation in the diagnosis of multiple sclerosis.  J Neurol Sci. 1991;  106 25-30
  • 47 van der Kamp W, Maertens de Noordhout A, Thompson P D. et al . Correlation of phasic muscle strength and corticomotoneuron conduction time in multiple sclerosis.  Ann Neurol. 1991;  29 6-12
  • 48 Jenkins I H, Fernandez W, Playford E D. et al . Impaired activation of the supplementary motor area in Parkinson's disease is reversed when akinesia is treated with apomorphine.  Ann Neurol. 1992;  32 749-757
  • 49 Ravnborg M, Liguori R, Christiansen P. et al . The diagnostic reliability of magnetically evoked motor potentials in multiple sclerosis.  Neurology. 1992;  42 1296-1301
  • 50 Michels R, Wessel K, Klöhn S, Kömpf D. Long-latency reflexes, somatosensory evoked potentials and transcranial magnetic stimulation: relation of the three methods in multiple sclerosis.  Electroencephalogr Clin Neurophysiol. 1993;  89 235-241
  • 51 Kidd D, Thompson P D, Day B L. et al . Central motor conduction time in progressive multiple sclerosis. Correlations with MRI and disease activity.  Brain. 1998;  121 1109-1116
  • 52 Abbruzzese G, Morena M, Dall'Agata D. et al . Motor evoked potentials (MEPs) in lacunar syndromes.  Electroencephalogr Clin Neurophysiol. 1991;  81 202-208
  • 53 Hömberg V, Stephan K M, Netz J. Transcranial stimulation of motor cortex in upper motor neurone syndrome: its relation to the motor deficit.  Electroencephalogr Clin Neurophysiol. 1991;  81 377-388
  • 54 Heald A, Bates D, Cartlidge N E. et al . Longitudinal study of central motor conduction time following stroke. 1. Natural history of central motor conduction.  Brain. 1993;  116 1355-1370
  • 55 Heald A, Bates D, Cartlidge N E. et al . Longitudinal study of central motor conduction time following stroke. 2. Central motor conduction measured within 72 h after stroke as a predictor of functional outcome at 12 months.  Brain. 1993;  116 1371-1385
  • 56 D'Olhaberriague L, Espadaler Gamissans J M, Marrugat J. et al . Transcranial magnetic stimulation as a prognostic tool in stroke.  J Neurol Sci. 1997;  147 73-80
  • 57 Thompson P D, Dick J P, Asselman P. et al . Examination of motor function in lesions of the spinal cord by stimulation of the motor cortex.  Ann Neurol. 1987;  21 389-396
  • 58 Abbruzzese G, Dall'Agata D, Morena M. et al . Electrical stimulation of the motor tracts in cervical spondylosis.  J Neurol Neurosurg Psychiatry. 1988;  51 796-802
  • 59 Maertens de Noordhout A, Remacle J M, Pepin J L. et al . Magnetic stimulation of the motor cortex in cervical spondylosis.  Neurology. 1991;  41 75-80
  • 60 Di Lazzaro V, Restuccia D, Colosimo C, Tonali P. The contribution of magnetic stimulation of the motor cortex to the diagnosis of cervical spondylotic myelopathy. Correlation of central motor conduction to distal and proximal upper limb muscles with clinical and MRI findings.  Electroencephalogr Clin Neurophysiol. 1992;  85 311-320
  • 61 Banerjee T K, Mostofi M S, Us O. et al . Magnetic stimulation in the determination of lumbosacral motor radiculopathy.  Electroencephalogr Clin Neurophysiol. 1993;  89 221-226
  • 62 Tavy D L, Wagner G L, Keunen R W. et al . Transcranial magnetic stimulation in patients with cervical spondylotic myelopathy: clinical and radiological correlations.  Muscle Nerve. 1994;  17 235-241
  • 63 Chistyakov A V, Soustiel J F, Hafner H, Feinsod M. Motor and somatosensory conduction in cervical myelopathy and radiculopathy.  Spine. 1995;  20 2135-2140
  • 64 Kameyama O, Shibano K, Kawakita H, Ogawa R. Transcranial magnetic stimulation of the motor cortex in cervical spondylosis and spinal canal stenosis.  Spine. 1995;  20 1004-1010
  • 65 Ugawa Y, Uesaka Y, Terao Y. et al . Clinical utility of magnetic corticospinal tract stimulation at the foramen magnum level.  Electroencephalogr Clin Neurophysiol. 1996;  101 247-254
  • 66 Maertens de Noordhout A, Myressiotis S, Delvaux V. et al . Motor and somatosensory evoked potentials in cervical spondylotic myelopathy.  Electroencephalogr Clin Neurophysiol. 1998;  108 24-31
  • 67 Hugon J, Lubeau M, Tabaraud F. et al . Central motor conduction in motor neuron disease.  Ann Neurol. 1987;  22 544-546
  • 68 Ingram D A, Swash M. Central motor conduction is abnormal in motor neuron disease.  J Neurol Neurosurg Psychiatry. 1987;  50 159-166
  • 69 Schriefer T N, Hess C W, Mills K R, Murray N M. Central motor conduction studies in motor neurone disease using magnetic brain stimulation.  Electroencephalogr Clin Neurophysiol. 1989;  74 431-437
  • 70 Claus D, Brunhölzl C, Kerling F P, Henschel S. Transcranial magnetic stimulation as a diagnostic and prognostic test in amyotrophic lateral sclerosis.  J Neurol Sci. 1995;  129, Suppl 30-34
  • 71 Mills K R, Nithi K A. Peripheral and central motor conduction in amyotrophic lateral sclerosis.  J Neurol Sci. 1998;  159 82-87
  • 72 Schulte-Mattler W J, Müller T, Zierz S. Transcranial magnetic stimulation compared with upper motor neuron signs in patients with amyotrophic lateral sclerosis.  J Neurol Sci. 1999;  170 51-56
  • 73 Trompetto C, Caponnetto C, Buccolieri A. et al . Responses of masseter muscles to transcranial magnetic stimulation in patients with amyotrophic lateral sclerosis.  Electroencephalogr Clin Neurophysiol. 1998;  109 309-314
  • 74 Urban P P, Vogt T, Hopf H C. Corticobulbar tract involvement in amyotrophic lateral sclerosis. A transcranial magnetic stimulation study.  Brain. 1998;  121 1099-1108
  • 75 Claus D, Harding A E, Hess C W. et al . Central motor conduction in degenerative ataxic disorders: a magnetic stimulation study.  J Neurol Neurosurg Psychiatry. 1988;  51 790-795
  • 76 Cruz Martinez A, Anciones B. Central motor conduction to upper and lower limbs after magnetic stimulation of the brain and peripheral nerve abnormalities in 20 patients with Friedreich's ataxia.  Acta Neurol Scand. 1992;  85 323-326
  • 77 Yokota T, Sasaki H, Iwabuchi K. et al . Electrophysiological features of central motor conduction in spinocerebellar atrophy type 1, type 2, and Machado-Joseph disease.  J Neurol Neurosurg Psychiatry. 1998;  65 530-534
  • 78 Meyer B U, Britton T C, Bischoff C. et al . Abnormal conduction in corticospinal pathways in Wilson's disease: investigation of nine cases with magnetic brain stimulation.  Mov Disord. 1991;  6 320-323
  • 79 Abbruzzese G, Tabaton M, Morena M. et al . Motor and sensory evoked potentials in progressive supranuclear palsy.  Mov Disord. 1991;  6 49-54
  • 80 Schubert M, Zierz S, Dengler R. Central and peripheral nervous system conduction in mitochondrial myopathy with chronic progressive external ophthalmoplegia.  Electroencephalogr Clin Neurophysiol. 1994;  90 304-312
  • 81 Di Lazzaro V, Restuccia D, Servidei S. et al . Functional involvement of central nervous system in mitochondrial disorders.  Electroencephalogr Clin Neurophysiol. 1997;  105 171-180
  • 82 Oliveri M, Brighina F, La Bua V. et al . Magnetic stimulation study in patients with myotonic dystrophy.  Electroencephalogr Clin Neurophysiol. 1997;  105 297-301
  • 83 Dick J P, Cowan J M, Day B L. et al . The corticomotoneurone connection is normal in Parkinson's disease.  Nature. 1984;  310 407-409
  • 84 Thompson P D, Dick J P, Day B L. et al . Electrophysiology of the corticomotoneurone pathways in patients with movement disorders.  Mov Disord. 1986;  1 113-117
  • 85 Eisen A A, Shtybel W. AAEM minimonograph #35: Clinical experience with transcranial magnetic stimulation.  Muscle Nerve. 1990;  13 995-1011
  • 86 Cantello R, Gianelli M, Bettucci D. et al . Parkinson's disease rigidity: magnetic motor evoked potentials in a small hand muscle.  Neurology. 1991;  41 1449-1456
  • 87 Ikoma K, Mano Y, Takayanagi T. Pulsed magnetic stimulation and F waves in Parkinson's disease.  Intern Med. 1994;  33 77-81
  • 88 Abbruzzese G, Marchese R, Trompetto C. Sensory and motor evoked potentials in multiple system atrophy: a comparative study with Parkinson's disease.  Mov Disord. 1997;  12 315-321
  • 89 Hömberg V, Lange H W. Central motor conduction to hand and leg muscles in Huntington's disease.  Mov Disord. 1990;  5 214-218
  • 90 Schwenkreis P, Vorgerd M, Malin J P, Tegenthoff M. Assessment of postexcitatory inhibition in patients with focal dystonia.  Acta Neurol Scand. 1999;  100 260-264
  • 91 Magistris M R, Rosler K M, Truffert A. et al . A clinical study of motor evoked potentials using a triple stimulation technique.  Brain. 1999;  122 265-279
  • 92 Rösler K M, Truffert A, Hess C W, Magistris M R. Quantification of upper motor neuron loss in amyotrophic lateral sclerosis.  Clin Neurophysiol. 2000;  111 2208-2218
  • 93 Ugawa Y, Genba-Shimizu K, Kanazawa I. Electrical stimulation of the human descending motor tracts at several levels.  Can J Neurol Sci. 1995;  22 36-42
  • 94 Ugawa Y, Uesaka Y, Terao Y. et al . Magnetic stimulation of corticospinal pathways at the foramen magnum level in humans.  Ann Neurol. 1994;  36 618-624
  • 95 Priori A, Bertolasi L, Dressler D. et al . Transcranial electric and magnetic stimulation of the leg area of the human motor cortex: single motor unit and surface EMG responses in the tibialis anterior muscle.  Electroencephalogr Clin Neurophysiol. 1993;  89 131-137
  • 96 Terao Y, Ugawa Y, Sakai K. et al . Transcranial stimulation of the leg area of the motor cortex in humans.  Acta Neurol Scand. 1994;  89 378-383
  • 97 Terao Y, Ugawa Y, Hanajima R. et al . Predominant activation of I1-waves from the leg motor area by transcranial magnetic stimulation.  Brain Res. 2000;  859 137-146
  • 98 Maccabee P J, Lipitz M E, Desudchit T. et al . A new method using neuromagnetic stimulation to measure conduction time within the cauda equina.  Electroencephalogr Clin Neurophysiol. 1996;  101 153-166
  • 99 Maccabee P J, Lipitz M E, Desudchit T. et al . Detection of proximal demyelinating neuropathy in cauda equina by neuromagnetic stimulation (abstract).  Neurology. 1995;  45, Suppl A4 A170
  • 100 Ziemann U, Steinhoff B J, Tergau F, Paulus W. Trancranial magnetic stimulation: its current role in epilepsy research.  Epilepsy Res. 1998;  30 11-30
  • 101 Ziemann U, Lönnecker S, Steinhoff B J, Paulus W. Effects of antiepileptic drugs on motor cortex excitability in humans: a transcranial magnetic stimulation study.  Ann Neurol. 1996;  40 367-378
  • 102 Cicinelli P, Traversa R, Bassi A. et al . Interhemispheric differences of hand muscle representation in human motor cortex.  Muscle Nerve. 1997;  20 535-542
  • 103 Mills K R, Nithi K A. Corticomotor threshold to magnetic stimulation: normal values and repeatability.  Muscle Nerve. 1997;  20 570-576
  • 104 Macdonell R A, Shapiro B E, Chiappa K H. et al . Hemispheric threshold differences for motor evoked potentials produced by magnetic coil stimulation.  Neurology. 1991;  41 1441-1444
  • 105 Triggs W J, Calvanio R, Macdonell R A. et al . Physiological motor asymmetry in human handedness: evidence from transcranial magnetic stimulation.  Brain Res. 1994;  636 270-276
  • 106 Triggs W J, Calvanio R, Levine M. Transcranial magnetic stimulation reveals a hemispheric asymmetry correlate of intermanual differences in motor performance.  Neuropsychologia. 1997;  35 1355-1363
  • 107 Hallett M, Chen R, Ziemann U, Cohen L G. Reorganization in motor cortex in amputees and in normal volunteers after ischemic limb deafferentation.  Electroencephalogr Clin Neurophysiol. 1999;  51, Suppl 183-187
  • 108 Brouwer B, Ashby P. Corticospinal projections to upper and lower limb spinal motoneurons in man.  Electroencephalogr Clin Neurophysiol. 1990;  76 509-519
  • 109 Hodgkin A L, Huxley A F. A quantative description of membrane current and its application to conduction and excitation in nerve.  J Physiol. 1952;  116 500-544
  • 110 Mavroudakis N, Caroyer J M, Brunko E, Zegers de Beyl D. Effects of diphenylhydantoin on motor potentials evoked with magnetic stimulation.  Electroencephalogr Clin Neurophysiol. 1994;  93 428-433
  • 111 Chen R, Samii A, Canos M. et al . Effects of phenytoin on cortical excitability in humans.  Neurology. 1997;  49 881-883
  • 112 Catano A, Houa M, Caroyer J M. et al . Magnetic transcranial stimulation in acute stroke: early excitation threshold and functional prognosis.  Electroencephalogr Clin Neurophysiol. 1996;  101 233-239
  • 113 McKay W B, Stokic D S, Dimitrijevic M R. Assessment of corticospinal function in spinal cord injury using transcranial motor cortex stimulation: a review.  J Neurotrauma. 1997;  14 539-548
  • 114 Reutens D C, Berkovic S F, Macdonell R A, Bladin P F. Magnetic stimulation of the brain in generalized epilepsy: reversal of cortical hyperexcitability by anticonvulsants.  Ann Neurol. 1993;  34 351-355
  • 115 Gianelli M, Cantello R, Civardi C. et al . Idiopathic generalized epilepsy: magnetic stimulation of motor cortex time-locked and unlocked to 3-Hz spike-and-wave discharges.  Epilepsia. 1994;  35 53-60
  • 116 Hufnagel A, Elger C E, Marx W, Ising A. Magnetic motor-evoked potentials in epilepsy: effects of the disease and of anticonvulsant medication.  Ann Neurol. 1990;  28 680-686
  • 117 Reutens D C, Berkovic S F. Increased cortical excitability in generalised epilepsy demonstrated with transcranial magnetic stimulation (letter).  Lancet. 1992;  339 362-363
  • 118 Terao Y, Hayashi H, Shimizu T. et al . Altered motor cortical excitability to magnetic stimulation in a patient with a lesion in globus pallidus.  J Neurol Sci. 1995;  129 175-178
  • 119 Berardelli A, Rona S, Inghilleri M, Manfredi M. Cortical inhibition in Parkinson's disease. A study with paired magnetic stimulation.  Brain. 1996;  119 71-77
  • 120 Ridding M C, Inzelberg R, Rothwell J C. Changes in excitability of motor cortical circuitry in patients with Parkinson's disease.  Ann Neurol. 1995;  37 181-188
  • 121 Ridding M C, Sheean G, Rothwell J C. et al . Changes in the balance between motor cortical excitation and inhibition in focal, task specific dystonia.  J Neurol Neurosurg Psychiatry. 1995;  59 493-498
  • 122 Rona S, Berardelli A, Vacca L. et al . Alterations of motor cortical inhibition in patients with dystonia.  Mov Disord. 1998;  13 118-124
  • 123 Ziemann U, Koc J, Reimers C D. et al . Exploration of motor cortex excitability in a diabetic patient with hemiballism-hemichorea.  Mov Disord. 2000;  15 1000-1005
  • 124 Ophoff R A, Terwindt G M, Vergouwe M N. et al . Familial hemiplegic migraine: involvement of a calcium neuronal channel.  Neurologia. 1997;  12, Suppl 5 31-37
  • 125 Lnenicka G A, Hong S J. Activity-dependent changes in voltage-dependent calcium currents and transmitter release.  Mol Neurobiol. 1997;  14 37-66
  • 126 van der Kamp W, Maasen VanDenBrink A, Ferrari M D, van Dijk J G. Interictal cortical excitability to magnetic stimulation in familial hemiplegic migraine.  Neurology. 1997;  48 1462-1464
  • 127 Werhahn K J, Wiseman K, Herzog J. et al . Motor cortex excitability in patients with migraine with aura and hemiplegic migraine.  Cephalalgia. 2000;  20 45-50
  • 128 Brouwer B, Ashby P. Corticospinal projections to lower limb motoneurons in man.  Exp Brain Res. 1992;  89 649-654
  • 129 Amassian V E, Stewart M, Quirk G J, Rosenthal J L. Physiological basis of motor effects of a transient stimulus to cerebral cortex.  Neurosurgery. 1987;  20 74-93
  • 130 Ziemann U, Rothwell J C. I-waves in motor cortex. J Clin Neurophysiol 2000 in press
  • 131 Di Lazzaro V, Oliviero A, Profice P. et al . Comparison of descending volleys evoked by transcranial magnetic and electric stimulation in conscious humans.  Electroencephalogr Clin Neurophysiol. 1998;  109 397-401
  • 132 Burke D, Hicks R, Gandevia S C. et al . Direct comparison of corticospinal volleys in human subjects to transcranial magnetic and electrical stimulation.  J Physiol. 1993;  470 383-393
  • 133 Hicks R, Burke D, Stephen J. et al . Corticospinal volleys evoked by electrical stimulation of human motor cortex after withdrawal of volatile anaesthetics.  J Physiol. 1992;  456 393-404
  • 134 Kitagawa H, Nakamura H, Kawaguchi Y. et al . Magnetic-evoked compound muscle action potential neuromonitoring in spine surgery.  Spine. 1995;  20 2233-2239
  • 135 Di Lazzaro V, Oliviero A, Meglio M. et al . Direct demonstration of the effect of lorazepam on the excitability of the human motor cortex.  Clin Neurophysiol. 2000;  111 794-799
  • 136 Boroojerdi B. et al .Mechanisms influencing input-output properties of the human corticospinal system. Clin Neurophysiol 2001 112: (im Druck)
  • 137 Ikoma K, Samii A, Mercuri B. et al . Abnormal cortical motor excitability in dystonia.  Neurology. 1996;  46 1371-1376
  • 138 Valls-Sole J, Pascual-Leone A, Brasil-Neto J P. et al . Abnormal facilitation of the response to transcranial magnetic stimulation in patients with Parkinson's disease.  Neurology. 1994;  44 735-741
  • 139 Cantello R, Gianelli M, Civardi C, Mutani R. Magnetic brain stimulation: the silent period after the motor evoked potential.  Neurology. 1992;  42 1951-1959
  • 140 Inghilleri M, Berardelli A, Cruccu G, Manfredi M. Silent period evoked by transcranial stimulation of the human cortex and cervicomedullary junction.  J Physiol. 1993;  466 521-534
  • 141 Wilson S A, Lockwood R J, Thickbroom G W, Mastaglia F L. The muscle silent period following transcranial magnetic cortical stimulation.  J Neurol Sci. 1993;  114 216-222
  • 142 Haug B A, Schonle P W, Knobloch C, Kohne M. Silent period measurement revives as a valuable diagnostic tool with transcranial magnetic stimulation.  Electroencephalogr Clin Neurophysiol. 1992;  85 158-160
  • 143 Roick H, von Giesen H J, Benecke R. On the origin of the postexcitatory inhibition seen after transcranial magnetic brain stimulation in awake human subjects.  Exp Brain Res. 1993;  94 489-498
  • 144 Fritz C, Braune H J, Pylatiuk C, Pohl M. Silent period following transcranial magnetic stimulation: a study of intra- and inter-examiner reliability.  Electroencephalogr Clin Neurophysiol. 1997;  105 235-240
  • 145 Priori A, Oliviero A, Donati E. et al . Human handedness and asymmetry of the motor cortical silent period.  Exp Brain Res. 1999;  128 390-396
  • 146 Fuhr P, Agostino R, Hallett M. Spinal motor neuron excitability during the silent period after cortical stimulation.  Electroencephalogr Clin Neurophysiol. 1991;  81 257-262
  • 147 Robinson L R, Goldstein B S, Little J W. Silent periods after electromagnetic stimulation of the motor cortex.  Am J Phys Med Rehabil. 1993;  72 23-28
  • 148 Ziemann U, Netz J, Szelenyi A, Hömberg V. Spinal and supraspinal mechanisms contribute to the silent period in the contracting soleus muscle after transcranial magnetic stimulation of human motor cortex.  Neurosci Lett. 1993;  156 167-171
  • 149 Brasil-Neto J P, Cammarota A, Valls-Sole J. et al . Role of intracortical mechanisms in the late part of the silent period to transcranial stimulation of the human motor cortex.  Acta Neurol Scand. 1995;  92 383-386
  • 150 Hallett M. Transcranial magnetic stimulation. Negative effects.  Adv Neurol. 1995;  67 107-113
  • 151 Connors B W, Malenka R C, Silva L R. Two inhibitory postsynaptic potentials, and GABAA and GABAB receptor-mediated responses in neocortex of rat and cat.  J Physiol. 1988;  406 443-468
  • 152 Avoli M, Hwa G, Louvel J. et al . Functional and pharmacological properties of GABA-mediated inhibition in the human neocortex.  Can J Physiol Pharmacol. 1997;  75 526-534
  • 153 Werhahn K J, Kunesch E, Noachtar S. et al . Differential effects on motorcortical inhibition induced by blockade of GABA uptake in humans.  J Physiol. 1999;  517 591-597
  • 154 Siebner H R, Dressnandt J, Auer C, Conrad B. Continuous intrathecal baclofen infusions induced a marked increase of the transcranially evoked silent period in a patient with generalized dystonia.  Muscle Nerve. 1998;  21 1209-1212
  • 155 Ziemann U, Lönnecker S, Steinhoff B J, Paulus W. The effect of lorazepam on the motor cortical excitability in man.  Exp Brain Res. 1996;  109 127-135
  • 156 Inghilleri M, Berardelli A, Marchetti P, Manfredi M. Effects of diazepam, baclofen and thiopental on the silent period evoked by transcranial magnetic stimulation in humans.  Exp Brain Res. 1996;  109 467-472
  • 157 Warren J D, Kimber T E, Thompson P D. The silent period after magnetic brain stimulation in generalized tetanus.  Muscle & Nerve. 1999;  22 1590-1592
  • 158 Priori A, Berardelli A, Inghilleri M. et al . Motor cortical inhibition and the dopaminergic system. Pharmacological changes in the silent period after transcranial brain stimulation in normal subjects, patients with Parkinson's disease and drug-induced parkinsonism.  Brain. 1994;  117 317-323
  • 159 Nakashima K, Wang Y, Shimoda M. et al . Shortened silent period produced by magnetic cortical stimulation in patients with Parkinson's disease.  J Neurol Sci. 1995;  130 209-214
  • 160 von Giesen H J, Roick H, Benecke R. Inhibitory actions of motor cortex following unilateral brain lesions as studied by magnetic brain stimulation.  Exp Brain Res. 1994;  99 84-96
  • 161 Schnitzler A, Benecke R. The silent period after transcranial magnetic stimulation is of exclusive cortical origin: evidence from isolated cortical ischemic lesions in man.  Neurosci Lett. 1994;  180 41-45
  • 162 Sloper J J, Johnson P, Powell T P. Selective degeneration of interneurons in the motor cortex of infant monkeys following controlled hypoxia: a possible cause of epilepsy.  Brain Res. 1980;  198 204-209
  • 163 Inghilleri M, Mattia D, Berardelli A, Manfredi M. Asymmetry of cortical excitability revealed by transcranial stimulation in a patient with focal motor epilepsy and cortical myoclonus.  Electroencephalogr Clin Neurophysiol. 1998;  109 70-72
  • 164 Cicinelli P, Mattia D, Spanedda F. et al . Transcranial magnetic stimulation reveals an interhemispheric asymmetry of cortical inhibition in focal epilepsy.  Neuroreport. 2000;  11 701-707
  • 165 Prout A J, Eisen A A. The cortical silent period and amyotrophic lateral sclerosis.  Muscle Nerve. 1994;  17 217-223
  • 166 Ziemann U, Paulus W, Rothenberger A. Decreased motor inhibition in Tourette disorder: Evidence from transcranial magnetic stimulation.  Am J Psychiatry. 1997;  154 1277-1284
  • 167 Catano A, Houa M, Noel P. Magnetic transcranial stimulation: dissociation of excitatory and inhibitory mechanisms in acute strokes.  Electroencephalogr Clin Neurophysiol. 1997;  105 29-36
  • 168 Filipovic S R, Ljubisavljevic M, Svetel M. et al . Impairment of cortical inhibition in writer's cramp as revealed by changes in electromyographic silent period after transcranial magnetic stimulation.  Neurosci Lett. 1997;  222 167-170
  • 169 Faig J, Busse O. Silent period evoked by transcranial magnetic stimulation in unilateral thalamic infarcts.  J Neurol Sci. 1996;  142 85-92
  • 170 Classen J, Schnitzler A, Binkofski F. et al . The motor syndrome associated with exaggerated inhibition within the primary motor cortex of patients with hemiparetic stroke.  Brain. 1997;  120 605-619
  • 171 Classen J, Witte O W, Schlaug G. et al . Epileptic seizures triggered directly by focal transcranial magnetic stimulation.  Electroencephalogr Clin Neurophysiol. 1995;  94 19-25
  • 172 Rouiller E M, Babalian A, Kazennikov O. et al . Transcallosal connections of the distal forelimb representations of the primary and supplementary motor cortical areas in macaque monkeys.  Exp Brain Res. 1994;  102 227-243
  • 173 Nass R. Mirror movement asymmetries in congenital hemiparesis: the inhibition hypothesis revisited.  Neurology. 1985;  35 1059-1062
  • 174 Wassermann E M, Fuhr P, Cohen L G, Hallett M. Effects of transcranial magnetic stimulation on ipsilateral muscles.  Neurology. 1991;  41 1795-1799
  • 175 Meyer B U, Röricht S, Gräfin von Einsiedel H. et al . Inhibitory and excitatory interhemispheric transfers between motor cortical areas in normal humans and patients with abnormalities of the corpus callosum.  Brain. 1995;  118 429-440
  • 176 Meyer B-U, Röricht S, Woiciechowsky C. Topography of fibers in the human corpus callosum mediating interhemispheric inhibition between the motor cortices.  Ann Neurol. 1998;  43 360-369
  • 177 Ferbert A, Priori A, Rothwell J C. et al . Interhemispheric inhibition of the human motor cortex.  J Physiol. 1992;  453 525-546
  • 178 Ugawa Y, Hanajima R, Kanazawa I. Interhemispheric facilitation of the hand area of the human motor cortex.  Neurosci Lett. 1993;  160 153-155
  • 179 Netz J, Ziemann U, Hömberg V. Hemispheric asymmetry of transcallosal inhibition in man.  Exp Brain Res. 1995;  104 527-533
  • 180 Hanajima R, Ugawa Y, Machii K. et al . Interhemispheric facilitation of the hand motor area in humans.  J Physiol. 2001;  531 849-859
  • 181 Schmierer K, Niehaus L, Röricht S, Meyer B U. Conduction deficits of callosal fibres in early multiple sclerosis.  J Neurol Neurosurg Psychiatry. 2000;  68 633-638
  • 182 Cracco R Q, Amassian V E, Maccabee P J, Cracco J B. Comparison of human transcallosal responses evoked by magnetic coil and electrical stimulation.  Electroencephalogr Clin Neurophysiol. 1989;  74 417-424
  • 183 Asanuma H, Okuda O. Effects of transcallosal volleys on pyramidal tract cell activity of cat.  J Neurophysiol. 1962;  25 198-208
  • 184 Röricht S, Meyer B-U, Woichiechowsky C, Lehmann R. Callosal and corticospinal tract function in patients with hydrocephalus: a morphometric and transcranial magnetic stimulation study.  J Neurol. 1998;  245 280-288
  • 185 Boroojerdi B, Hungs M, Mull M. et al . Interhemispheric inhibition in patients with multiple sclerosis.  Electroencephalogr Clin Neurophysiol. 1998;  109 230-237
  • 186 Brown P, Ridding M C, Werhahn K J. et al . Abnormalities of the balance between inhibition and excitation in the motor cortex of patients with cortical myoclonus.  Brain. 1996;  119 309-317
  • 187 Boroojerdi B, Diefenbach K, Ferbert A. Transcallosal inhibition in cortical and subcortical cerebral vascular lesions.  J Neurol Sci. 1996;  144 160-170
  • 188 Kujirai T, Caramia M D, Rothwell J C. et al . Corticocortical inhibition in human motor cortex.  J Physiol. 1993;  471 501-519
  • 189 Ziemann U, Rothwell J C, Ridding M C. Interaction between intracortical inhibition and facilitation in human motor cortex.  J Physiol. 1996;  496 873-881
  • 190 Ziemann U. Intracortical inhibition and facilitation in the conventional paired TMS paradigm.  Electroencephalogr Clin Neurophysiol. 1999;  51, Suppl 127-136
  • 191 Sanger T D, Garg R R, Chen R. Interactions between two different inhibitory systems in the human motor cortex.  J Physiol. 2001;  530,2 307-317
  • 192 Di Lazzaro V, Restuccia D, Oliviero A. et al . Magnetic transcranial stimulation at intensities below active motor threshold activates intracortical inhibitory circuits.  Exp Brain Res. 1998;  119 265-268
  • 193 Nakamura H, Kitagawa H, Kawaguchi Y, Tsuji H. Intracortical facilitation and inhibition after transcranial magnetic stimulation in conscious humans.  J Physiol. 1997;  498 817-823
  • 194 Liepert J, Schwenkreis P, Tegenthoff M, Malin J-P. The glutamate antagonist Riluzole suppresses intracortical facilitation.  J Neural Transm. 1997;  104 1207-1214
  • 195 Ziemann U, Chen R, Cohen L G, Hallett M. Dextromethorphan decreases the excitability of the human motor cortex.  Neurology. 1998;  51 1320-1324
  • 196 Schwenkreis P, Witscher K, Janssen F. et al . Influence of the N-methyl-D-aspartate antagonist mementine on human motor cortex excitability.  Neurosci Lett. 1999;  270 137-140
  • 197 Schwenkreis P, Liepert J, Witscher K. et al . Riluzole suppresses motor cortex facilitation in correlation to its plasma level.  Exp Brain Res. 2000;  135 293-299
  • 198 Fong J KY, Werhahn K J, Rothwell J C. et al . Motor cortex excitability in focal and generalized epilepsy (abstract).  J Physiol. 1993;  459 468P
  • 199 Caramia M D, Gigli G, Iani C. et al . Distinguishing forms of generalized epilepsy using magnetic brain stimulation.  Electroencephalogr Clin Neurophysiol. 1996;  98 14-19
  • 200 Hanajima R, Ugawa Y, Terao Y. et al . Ipsilateral cortico-cortical inhibition of the motor cortex in various neurological disorders.  J Neurol Sci. 1996;  140 109-116
  • 201 Herrendorf G, Ziemann U, Kurth C. et al . Messung der zerebralen Oxygenierung mittels Nah-Infrarot-Spektroskopie (NIRS) und der Exzitabilität des motorischen Kortex mittels transkranieller Magnetstimulation (TMS) bei einem Patienten mit Epilepsia partialis continua.  Klin Neurophysiol. 1998;  29 334-337
  • 202 Cantello R, Civardi C, Cavalli A. et al . Cortical excitability in cryptogenic localization-related epilepsy: interictal transcranial magnetic stimulation studies.  Epilepsia. 2000;  41 694-704
  • 203 Abbruzzese G, Buccolieri A, Marchese R. et al . Intracortical inhibition and facilitation are abnormal in Huntington's disease: a paired magnetic stimulation study.  Neurosci Lett. 1997;  228 87-90
  • 204 Hanajima R, Ugawa Y, Terao Y. et al . Cortico-cortical inhibition of the motor cortical area projecting to sternocleidomastoid muscle in normals and patients with spasmodic torticollis or essential tremor.  Electroencephalogr Clin Neurophysiol. 1998;  109 391-396
  • 205 Siebner H R, Tormos J M, Ceballos-Baumann A O. et al . Low-frequency repetitive transcranial magnetic stimulation of the motor cortex in writer's cramp.  Neurology. 1999;  52 529-537
  • 206 Tergau F, Wischer S, Paulus W. Motor system excitability in patients with restless legs syndrome.  Neurology. 1999;  52 1060-1063
  • 207 Marchese R, Trompetto C, Buccolieri A, Abbruzzese G. Abnormalities of motor cortical excitability are not correlated with clinical features in atypical Parkinsonism.  Mov Disord. 2000;  15 1210-1214
  • 208 Yokota T, Yoshino A, Inaba A, Saito Y. Double cortical stimulation in amyotrophic lateral sclerosis.  J Neurol Neurosurg Psychiatry. 1996;  61 596-600
  • 209 Ziemann U, Winter M, Reimers C D. et al . Impaired motor cortex inhibition in patients with amyotrophic lateral sclerosis. Evidence from paired transcranial magnetic stimulation.  Neurology. 1997;  49 1292-1298
  • 210 Sandbrink F, Syed N A, Fujii M D. et al . Motor cortex excitability in stiff-person syndrome.  Brain. 2000;  123 2231-2239
  • 211 Meinck H M, Ricker K, Conrad B. The stiff-man syndrome: new pathophysiological aspects from abnormal exteroceptive reflexes and the response to clomipramine, clonidine, and tizanidine.  J Neurol Neurosurg Psychiatry. 1984;  47 280-287
  • 212 Floeter M K, Valls-Sole J, Toro C. et al . Physiologic studies of spinal inhibitory circuits in patients with stiff-person syndrome.  Neurology. 1998;  51 85-93
  • 213 Liepert J, Wessel K, Schwenkreis P. et al . Reduced intracortical facilitation in patients with cerebellar degeneration.  Acta Neurol Scand. 1998;  98 318-323
  • 214 Tokimura H, Ridding M C, Tokimura Y. et al . Short latency facilitation between pairs of threshold magnetic stimuli applied to human motor cortex.  Electroencephalogr Clin Neurophysiol. 1996;  101 263-272
  • 215 Ziemann U, Tergau F, Wassermann E M. et al . Demonstration of facilitatory I-wave interaction in the human motor cortex by paired transcranial magnetic stimulation.  J Physiol. 1998;  511 181-190
  • 216 Di Lazzaro V, Rothwell J C, Oliviero A. et al . Intracortical origin of the short latency facilitation produced by pairs of threshold magnetic stimuli applied to human motor cortex.  Exp Brain Res. 1999;  129 494-499
  • 217 Mills K R. Magnetic brain stimulation: a tool to explore the action of the motor cortex on single human spinal motoneurones.  Trends Neurosci. 1991;  14 401-405
  • 218 Ziemann U, Tergau F, Wischer S. et al . Pharmacological control of facilitatory I-wave interaction in the human motor cortex. A paired transcranial magnetic stimulation study.  Electroencephalogr Clin Neurophysiol. 1998;  109 321-330
  • 219 Wischer S, Paulus W, Sommer M, Tergau F. Piracetam affects facilitatory I-wave interaction in the human motor cortex.  Clin Neurophysiol. 2001;  112 275-279
  • 220 Ho K-H, Lee M, Nithi K. et al . Changes in motor evoked potentials to short-interval paired transcranial magnetic stimuli in multiple sclerosis.  Clin Neurophysiol. 1999;  110 712-719
  • 221 Kidd D, Barkhof F, McConnell R. et al . Cortical lesions in multiple sclerosis.  Brain. 1999;  122 17-26
  • 222 Claus D, Weis M, Jahnke U. et al . Corticospinal conduction studied with magnetic double stimulation in the intact human.  J Neurol Sci. 1992;  111 180-188
  • 223 Valls-Sole J, Pascual-Leone A, Wassermann E M, Hallett M. Human motor evoked responses to paired transcranial magnetic stimuli.  Electroencephalogr Clin Neurophysiol. 1992;  85 355-364
  • 224 Claus D, Brunhölzl C. Facilitation and disfacilitation of muscle responses after repetitive transcranial cortical stimulation and electrical peripheral nerve stimulation.  Electroencephalogr Clin Neurophysiol. 1994;  93 417-420
  • 225 Valzania F, Quatrale R, Strafella A P. et al . Pattern of motor evoked response to repetitive transcranial magnetic stimulation.  Electroencephalogr Clin Neurophysiol. 1994;  93 312-317
  • 226 Kaneko K, Kawai S, Fuchigami Y. et al . Intracortical facilitation of the muscle response after transcranial magnetic double stimulation.  Muscle Nerve. 1996;  19 1043-1045
  • 227 Valzania F, Strafella A, Quatrale R. et al . Motor evoked responses to paired cortical magnetic stimulation in Parkinson's disease.  Electroencephalogr Clin Neurophysiol. 1997;  105 37-43
  • 228 Chen R, Wassermann E M, Canos M, Hallett M. Impaired inhibition in writer's cramp during voluntary muscle activation.  Neurology. 1997;  49 1054-1059
  • 229 Tegenthoff M, Vorgerd M, Juskowiak F. et al . Postexcitatory inhibition after transcranial magnetic single and double brain stimulation in Huntington's disease.  Electroencephalogr Clin Neurophysiol. 1996;  101 298-303
  • 230 Wessel K, Tegenthoff M, Vorgerd M. et al . Enhancement of inhibitory mechanisms in the motor cortex of patients with cerebellar degeneration: a study with transcranial magnetic brain stimulation.  Electroencephalogr Clin Neurophysiol. 1996;  101 273-280

PD Dr. med. Ulf Ziemann

Klinik für Neurologie
J.-W.-Goethe-Universität Frankfurt

Theodor-Stern-Kai 7

60590 Frankfurt am Main

Email: u.ziemann@em.uni-frankfurt.de