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Erschienen in: Experimental Brain Research 2/2008

01.11.2008 | Research Article

Differential effect of linguistic and non-linguistic pen-holding tasks on motor cortex excitability

verfasst von: Saša R. Filipović, Ilias Papathanasiou, Renate Whurr, John C. Rothwell, Marjan Jahanshahi

Erschienen in: Experimental Brain Research | Ausgabe 2/2008

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Abstract

Writing and drawing are unique human activities. They are complex high-precision actions, which involve not only the motor system but also various cognitive systems, such as attention, short-term memory, action control, and language. In relation to motor control, the study of writing and drawing is of great interest as they provide insight in the interaction between motor control processes and the concurrent non-motor processes. Although sharing similar motor and mechanical demands, writing and drawing involve different levels of linguistic/semantic load and thus may be associated with different modulation of motor cortical excitability. Here, we have used transcranial magnetic stimulation to study separately activation of excitatory and inhibitory mechanisms of the motor cortex during performance of writing and drawing acts as well as during simple pen-squeezing task. While cortical excitatory mechanisms appeared to be saturated by the pure motor demands of the tasks, and thus not amenable to modulation by the tasks’ linguistic load, variation in cortical inhibitory activity was the main vehicle for differential modulation of motor cortical excitability by linguistic demands of the tasks. The results of this study highlight the importance of cortical inhibitory mechanisms in the physiology of higher cognitive activities. They also provide further evidence that the task specific modulation of the excitability of the motor cortex goes beyond motor complexity of the task and is also dependant on associated cognitive components.
Literatur
Zurück zum Zitat Abbruzzese G, Trompetto C (2002) Clinical and research methods for evaluating cortical excitability. J Clin Neurophysiol 19:307–321PubMedCrossRef Abbruzzese G, Trompetto C (2002) Clinical and research methods for evaluating cortical excitability. J Clin Neurophysiol 19:307–321PubMedCrossRef
Zurück zum Zitat Alexander MP, Fischer RS, Friedman R (1992) Lesion localization in apractic agraphia. Arch Neurol 49:246–251PubMed Alexander MP, Fischer RS, Friedman R (1992) Lesion localization in apractic agraphia. Arch Neurol 49:246–251PubMed
Zurück zum Zitat Anderson SW, Damasio AR, Damasio H (1990) Troubled letters but not numbers: domain specific cognitive impairments following focal damage in frontal cortex. Brain 113:749–766PubMedCrossRef Anderson SW, Damasio AR, Damasio H (1990) Troubled letters but not numbers: domain specific cognitive impairments following focal damage in frontal cortex. Brain 113:749–766PubMedCrossRef
Zurück zum Zitat Barker AT, Jalinous R, Freeston IL (1985) Non-invasive magnetic stimulation of human motor cortex. Lancet 1(8437):1106–1107PubMedCrossRef Barker AT, Jalinous R, Freeston IL (1985) Non-invasive magnetic stimulation of human motor cortex. Lancet 1(8437):1106–1107PubMedCrossRef
Zurück zum Zitat Benson DF, Cummings JL (1985) Agraphia. In: Vinken PJ, Bruyn GW, Klawns HL, Fredericks JAM (eds) Handbook of clinical neurology, vol 45. Elsevier, Amsterdam, pp 457–472 Benson DF, Cummings JL (1985) Agraphia. In: Vinken PJ, Bruyn GW, Klawns HL, Fredericks JAM (eds) Handbook of clinical neurology, vol 45. Elsevier, Amsterdam, pp 457–472
Zurück zum Zitat Cantello R, Gianelli M, Civardi C, Mutani R (1992) Magnetic brain stimulation: the silent period after the motor evoked potential. Neurology 42:1951–1959PubMed Cantello R, Gianelli M, Civardi C, Mutani R (1992) Magnetic brain stimulation: the silent period after the motor evoked potential. Neurology 42:1951–1959PubMed
Zurück zum Zitat Davey NJ, Romaiguere P, Maskill DW, Ellaway PH (1994) Suppression of voluntary motor activity revealed using transcranial magnetic stimulation of the motor cortex in man. J Physiol 477:223–235PubMed Davey NJ, Romaiguere P, Maskill DW, Ellaway PH (1994) Suppression of voluntary motor activity revealed using transcranial magnetic stimulation of the motor cortex in man. J Physiol 477:223–235PubMed
Zurück zum Zitat Fadiga L, Fogassi L, Pavesi G, Rizzolatti G (1995) Motor facilitation during action observation: a magnetic stimulation study. J Neurophysiol 73:2608–2611PubMed Fadiga L, Fogassi L, Pavesi G, Rizzolatti G (1995) Motor facilitation during action observation: a magnetic stimulation study. J Neurophysiol 73:2608–2611PubMed
Zurück zum Zitat Filipovic SR, Ljubisavljevic M, Svetel M, Milanovic S, Kacar A, Kostic VS (1997) Impairment of cortical inhibition in writer’s cramp as revealed by changes in electromyographic silent period after transcranial magnetic stimulation. Neurosci Lett 222:167–170PubMedCrossRef Filipovic SR, Ljubisavljevic M, Svetel M, Milanovic S, Kacar A, Kostic VS (1997) Impairment of cortical inhibition in writer’s cramp as revealed by changes in electromyographic silent period after transcranial magnetic stimulation. Neurosci Lett 222:167–170PubMedCrossRef
Zurück zum Zitat Fuhr P, Agostino R, Hallett M (1991) Spinal motor neuron excitability during the silent period after cortical stimulation. Electroencephalogr Clin Neurophysiol 81:257–262PubMedCrossRef Fuhr P, Agostino R, Hallett M (1991) Spinal motor neuron excitability during the silent period after cortical stimulation. Electroencephalogr Clin Neurophysiol 81:257–262PubMedCrossRef
Zurück zum Zitat Hallett M (1995) Transcranial magnetic stimulation. Negative effects. Adv Neurol 67:107–113PubMed Hallett M (1995) Transcranial magnetic stimulation. Negative effects. Adv Neurol 67:107–113PubMed
Zurück zum Zitat Hallett M (1996) Transcranial magnetic stimulation: a useful tool for clinical neurophysiology. Ann Neurol 40:344–345PubMedCrossRef Hallett M (1996) Transcranial magnetic stimulation: a useful tool for clinical neurophysiology. Ann Neurol 40:344–345PubMedCrossRef
Zurück zum Zitat Hess CW, Mills KR, Murray NM (1987) Responses in small hand muscles from magnetic stimulation of the human brain. J Physiol 388:397–419PubMed Hess CW, Mills KR, Murray NM (1987) Responses in small hand muscles from magnetic stimulation of the human brain. J Physiol 388:397–419PubMed
Zurück zum Zitat Hess A, Kunesch E, Classen J, Hoeppner J, Stefan K, Benecke R (1999) Task-dependent modulation of inhibitory actions within the primary motor cortex. Exp Brain Res 124:321–330PubMedCrossRef Hess A, Kunesch E, Classen J, Hoeppner J, Stefan K, Benecke R (1999) Task-dependent modulation of inhibitory actions within the primary motor cortex. Exp Brain Res 124:321–330PubMedCrossRef
Zurück zum Zitat Hoshiyama M, Kakigi R (1999) Shortening of the cortical silent period following transcranial magnetic brain stimulation during an experimental paradigm for generating contingent negative variation (CNV). Clin Neurophysiol 110:1394–1398PubMedCrossRef Hoshiyama M, Kakigi R (1999) Shortening of the cortical silent period following transcranial magnetic brain stimulation during an experimental paradigm for generating contingent negative variation (CNV). Clin Neurophysiol 110:1394–1398PubMedCrossRef
Zurück zum Zitat Inghilleri M, Berardelli A, Cruccu G, Manfredi M (1993) Silent period evoked by transcranial stimulation of the human cortex and cervicomedullary junction. J Physiol 466:521–534PubMed Inghilleri M, Berardelli A, Cruccu G, Manfredi M (1993) Silent period evoked by transcranial stimulation of the human cortex and cervicomedullary junction. J Physiol 466:521–534PubMed
Zurück zum Zitat Izumi S, Findley TW, Ikai T, Andrews J, Daum M, Chino N (1995) Facilitatory effects of thinking about movement on motor-evoked potential transcranial magnetic stimulation of the brain. Am J Phys Med Rehabil 74:207–213PubMedCrossRef Izumi S, Findley TW, Ikai T, Andrews J, Daum M, Chino N (1995) Facilitatory effects of thinking about movement on motor-evoked potential transcranial magnetic stimulation of the brain. Am J Phys Med Rehabil 74:207–213PubMedCrossRef
Zurück zum Zitat Jahanshahi M (2005) TMS and cognitive function. In: Hallett M, Chokroverty S (eds) Magnetic stimulation in clinical neurophysiology, 2nd edn. Butterworth-Heinemann, Woburn, pp 281–302 Jahanshahi M (2005) TMS and cognitive function. In: Hallett M, Chokroverty S (eds) Magnetic stimulation in clinical neurophysiology, 2nd edn. Butterworth-Heinemann, Woburn, pp 281–302
Zurück zum Zitat Jahanshahi M, Rothwell JC (2000) Transcranial magnetic stimulation studies of cognition: an emerging field. Exp Brain Res 131:1–9PubMedCrossRef Jahanshahi M, Rothwell JC (2000) Transcranial magnetic stimulation studies of cognition: an emerging field. Exp Brain Res 131:1–9PubMedCrossRef
Zurück zum Zitat Katanoda K, Yoshikawa K, Sugishita M (2001) A functional MRI study on the neural substrates for writing. Hum Brain Mapp 13:34–42PubMedCrossRef Katanoda K, Yoshikawa K, Sugishita M (2001) A functional MRI study on the neural substrates for writing. Hum Brain Mapp 13:34–42PubMedCrossRef
Zurück zum Zitat Lo YL, Fook-Chong S (2004) Ipsilateral and contralateral motor inhibitory control in musical and vocalization tasks. Exp Brain Res 159:258–262PubMedCrossRef Lo YL, Fook-Chong S (2004) Ipsilateral and contralateral motor inhibitory control in musical and vocalization tasks. Exp Brain Res 159:258–262PubMedCrossRef
Zurück zum Zitat Longcamp M, Anton JL, Roth M, Velay JL (2003) Visual presentation of single letters activates a premotor area involved in writing. Neuroimage 19:1492–1500PubMedCrossRef Longcamp M, Anton JL, Roth M, Velay JL (2003) Visual presentation of single letters activates a premotor area involved in writing. Neuroimage 19:1492–1500PubMedCrossRef
Zurück zum Zitat Longstaff MG, Heath RA (2006) Spiral drawing performance as an indicator of fine motor function in people with multiple sclerosis. Hum Mov Sci 25:474–491PubMedCrossRef Longstaff MG, Heath RA (2006) Spiral drawing performance as an indicator of fine motor function in people with multiple sclerosis. Hum Mov Sci 25:474–491PubMedCrossRef
Zurück zum Zitat Mathis J, de Quervain D, Hess CW (1998) Dependence of the transcranially induced silent period on the ‘instruction set’ and the individual reaction time. Electroencephalogr Clin Neurophysiol 109:426–435PubMedCrossRef Mathis J, de Quervain D, Hess CW (1998) Dependence of the transcranially induced silent period on the ‘instruction set’ and the individual reaction time. Electroencephalogr Clin Neurophysiol 109:426–435PubMedCrossRef
Zurück zum Zitat Mathis J, de Quervain D, Hess CW (1999) Task-dependent effects on motor-evoked potentials and on the following silent period. J Clin Neurophysiol 16:556–565PubMedCrossRef Mathis J, de Quervain D, Hess CW (1999) Task-dependent effects on motor-evoked potentials and on the following silent period. J Clin Neurophysiol 16:556–565PubMedCrossRef
Zurück zum Zitat McDonnell MN, Orekhov Y, Ziemann U (2006) The role of GABAB receptors in intracortical inhibition in the human motor cortex. Exp Brain Res 173:86–93PubMedCrossRef McDonnell MN, Orekhov Y, Ziemann U (2006) The role of GABAB receptors in intracortical inhibition in the human motor cortex. Exp Brain Res 173:86–93PubMedCrossRef
Zurück zum Zitat McNeil MR, Tseng CH (1990) Acquired neurogenic dysgraphias. In: LaPointe LL (ed) Aphasia and related neurogenic language disorders, 1st edn. Thieme Medical Publishers, New York McNeil MR, Tseng CH (1990) Acquired neurogenic dysgraphias. In: LaPointe LL (ed) Aphasia and related neurogenic language disorders, 1st edn. Thieme Medical Publishers, New York
Zurück zum Zitat Meister IG, Boroojerdi B, Foltys H, Sparing R, Huber W, Tpper R (2003) Motor cortex hand area and speech: implications for the development of language. Neuropsychologia 41:401–406PubMedCrossRef Meister IG, Boroojerdi B, Foltys H, Sparing R, Huber W, Tpper R (2003) Motor cortex hand area and speech: implications for the development of language. Neuropsychologia 41:401–406PubMedCrossRef
Zurück zum Zitat Menon V, Desmond JE (2001) Left superior parietal cortex involvement in writing: integrating fMRI with lesion evidence. Brain Res Cogn Brain Res 12:337–340PubMedCrossRef Menon V, Desmond JE (2001) Left superior parietal cortex involvement in writing: integrating fMRI with lesion evidence. Brain Res Cogn Brain Res 12:337–340PubMedCrossRef
Zurück zum Zitat Molnar-Szakacs I, Uddin LQ, Iacoboni M (2005) Right-hemisphere motor facilitation by self-descriptive personality-trait words. Eur J Neurosci 21:2000–2006PubMedCrossRef Molnar-Szakacs I, Uddin LQ, Iacoboni M (2005) Right-hemisphere motor facilitation by self-descriptive personality-trait words. Eur J Neurosci 21:2000–2006PubMedCrossRef
Zurück zum Zitat Oldfield RC (1971) The assessment and analysis of handedness: the Edinburgh inventory. Neuropsychologia 9:97–113PubMedCrossRef Oldfield RC (1971) The assessment and analysis of handedness: the Edinburgh inventory. Neuropsychologia 9:97–113PubMedCrossRef
Zurück zum Zitat Papathanasiou I, Filipović SR, Whurr R, Rothwell JC, Jahanshahi M (2004) Changes in corticospinal motor excitability induced by non-motor linguistic tasks. Exp Brain Res 154:218–225PubMedCrossRef Papathanasiou I, Filipović SR, Whurr R, Rothwell JC, Jahanshahi M (2004) Changes in corticospinal motor excitability induced by non-motor linguistic tasks. Exp Brain Res 154:218–225PubMedCrossRef
Zurück zum Zitat Priori A, Berardelli A, Inghilleri M, Accornero N, Manfredi M (1994) 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 117:317–323PubMedCrossRef Priori A, Berardelli A, Inghilleri M, Accornero N, Manfredi M (1994) 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 117:317–323PubMedCrossRef
Zurück zum Zitat Roeltgen DP (1994) Localization of lesions in agraphia. In: Kertesz A (ed) Localization and neuroimaging in neuropsychology. Academic, London, pp 377–406 Roeltgen DP (1994) Localization of lesions in agraphia. In: Kertesz A (ed) Localization and neuroimaging in neuropsychology. Academic, London, pp 377–406
Zurück zum Zitat Rosenbaum DA (1991) Human motor control. Academic, London, pp 229–252 Rosenbaum DA (1991) Human motor control. Academic, London, pp 229–252
Zurück zum Zitat Rossini PM, Barker AT, Berardelli A, Caramia MD, Caruso G, Cracco RQ, Dimitrijević MR, Hallett M, Katayama Y, Lücking CH, Maertens de Noordhout AL, Marsden CD, Murray NMF, Rothwell JC, Swash M, Tomberg C (1994) 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 91:79–92PubMedCrossRef Rossini PM, Barker AT, Berardelli A, Caramia MD, Caruso G, Cracco RQ, Dimitrijević MR, Hallett M, Katayama Y, Lücking CH, Maertens de Noordhout AL, Marsden CD, Murray NMF, Rothwell JC, Swash M, Tomberg C (1994) 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 91:79–92PubMedCrossRef
Zurück zum Zitat Schriefer TN, Mills KR, Murray NM, Hess CW (1988) Evaluation of proximal facial nerve conduction by transcranial magnetic stimulation. J Neurol Neurosurg Psychiatry 51:60–66PubMed Schriefer TN, Mills KR, Murray NM, Hess CW (1988) Evaluation of proximal facial nerve conduction by transcranial magnetic stimulation. J Neurol Neurosurg Psychiatry 51:60–66PubMed
Zurück zum Zitat Strafella AP, Paus T (2000) Modulation of cortical excitability during action observation: a transcranial magnetic stimulation study. Neuroreport 11:2289–2292PubMedCrossRef Strafella AP, Paus T (2000) Modulation of cortical excitability during action observation: a transcranial magnetic stimulation study. Neuroreport 11:2289–2292PubMedCrossRef
Zurück zum Zitat Swindell CS, Holland AL, Fromm D, Greenhouse JB (1988) Characteristics of recovery of drawing ability in left and right brain-damaged patients. Brain Cogn 7:16–30PubMedCrossRef Swindell CS, Holland AL, Fromm D, Greenhouse JB (1988) Characteristics of recovery of drawing ability in left and right brain-damaged patients. Brain Cogn 7:16–30PubMedCrossRef
Zurück zum Zitat Tecce JJ (1972) Contingent negative variation (CNV) and psychological processes in man. Psychol Bull 77:73–108PubMedCrossRef Tecce JJ (1972) Contingent negative variation (CNV) and psychological processes in man. Psychol Bull 77:73–108PubMedCrossRef
Zurück zum Zitat Tergau F, Wanschura V, Canelo M, Wischer S, Wassermann EM, Ziemann U, Paulus W (1999) Complete suppression of voluntary motor drive during the silent period after transcranial magnetic stimulation. Exp Brain Res 124:447–454PubMedCrossRef Tergau F, Wanschura V, Canelo M, Wischer S, Wassermann EM, Ziemann U, Paulus W (1999) Complete suppression of voluntary motor drive during the silent period after transcranial magnetic stimulation. Exp Brain Res 124:447–454PubMedCrossRef
Zurück zum Zitat Tokimura H, Tokimura Y, Oliviero A, Asakura T, Rothwell JC (1996) Speech-induced changes in corticospinal excitability. Ann Neurol 40:628–634PubMedCrossRef Tokimura H, Tokimura Y, Oliviero A, Asakura T, Rothwell JC (1996) Speech-induced changes in corticospinal excitability. Ann Neurol 40:628–634PubMedCrossRef
Zurück zum Zitat Triggs WJ, Macdonell RA, Cros D, Chiappa KH, Shahani BT, Day BJ (1992) Motor inhibition and excitation are independent effects of magnetic cortical stimulation. Ann Neurol 32:345–351PubMedCrossRef Triggs WJ, Macdonell RA, Cros D, Chiappa KH, Shahani BT, Day BJ (1992) Motor inhibition and excitation are independent effects of magnetic cortical stimulation. Ann Neurol 32:345–351PubMedCrossRef
Zurück zum Zitat Uncini A, Treviso M, Di Muzio A, Simone P, Pullman S (1993) Physiological basis of voluntary activity inhibition induced by transcranial cortical stimulation. Electroencephalogr Clin Neurophysiol 89:211–220PubMedCrossRef Uncini A, Treviso M, Di Muzio A, Simone P, Pullman S (1993) Physiological basis of voluntary activity inhibition induced by transcranial cortical stimulation. Electroencephalogr Clin Neurophysiol 89:211–220PubMedCrossRef
Zurück zum Zitat van der Plaats RE, van Galen GP (1990) Effects of spatial and motor demands in handwriting. J Mot Behav 22:361–385PubMed van der Plaats RE, van Galen GP (1990) Effects of spatial and motor demands in handwriting. J Mot Behav 22:361–385PubMed
Zurück zum Zitat van Galen GP (1991) Handwriting: issues for a psychomotor theory. Hum Mov Sci 10:165–192CrossRef van Galen GP (1991) Handwriting: issues for a psychomotor theory. Hum Mov Sci 10:165–192CrossRef
Zurück zum Zitat Van Gemmert AWA, Teulings H-L, Contreras-Vidal JL, Stelmach GE (1999) Parkinson’s disease and the control of size and speed in handwriting. Neuropsychologia 37:685–694PubMedCrossRef Van Gemmert AWA, Teulings H-L, Contreras-Vidal JL, Stelmach GE (1999) Parkinson’s disease and the control of size and speed in handwriting. Neuropsychologia 37:685–694PubMedCrossRef
Zurück zum Zitat van Mier H, Hulstijn W (1993) The effects of motor complexity and practice on initiation time in writing and drawing. Acta Psychol (Amst) 84:231–251CrossRef van Mier H, Hulstijn W (1993) The effects of motor complexity and practice on initiation time in writing and drawing. Acta Psychol (Amst) 84:231–251CrossRef
Zurück zum Zitat Wassermann EM, Pascual-Leone A, Valls-Sole J, Toro C, Cohen LG, Hallett M (1993) Topography of the inhibitory and excitatory responses to transcranial magnetic stimulation in a hand muscle. Electroencephalogr Clin Neurophysiol 89:424–433PubMedCrossRef Wassermann EM, Pascual-Leone A, Valls-Sole J, Toro C, Cohen LG, Hallett M (1993) Topography of the inhibitory and excitatory responses to transcranial magnetic stimulation in a hand muscle. Electroencephalogr Clin Neurophysiol 89:424–433PubMedCrossRef
Zurück zum Zitat Wilson SA, Lockwood RJ, Thickbroom GW, Mastaglia FL (1993) The muscle silent period following transcranial magnetic cortical stimulation. J Neurol Sci 114:216–222PubMedCrossRef Wilson SA, Lockwood RJ, Thickbroom GW, Mastaglia FL (1993) The muscle silent period following transcranial magnetic cortical stimulation. J Neurol Sci 114:216–222PubMedCrossRef
Metadaten
Titel
Differential effect of linguistic and non-linguistic pen-holding tasks on motor cortex excitability
verfasst von
Saša R. Filipović
Ilias Papathanasiou
Renate Whurr
John C. Rothwell
Marjan Jahanshahi
Publikationsdatum
01.11.2008
Verlag
Springer-Verlag
Erschienen in
Experimental Brain Research / Ausgabe 2/2008
Print ISSN: 0014-4819
Elektronische ISSN: 1432-1106
DOI
https://doi.org/10.1007/s00221-008-1517-3

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