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Multichannel DC current source density mapping of the Bereitschaftspotential in the supplementary and primary motor area preceding differently loaded movements

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Summary

The goal of the investigation using 23 normal subjects was to clarify (1) whether the pre-movement neuronal activation in form of the Bereitschaftspotential (BP) is different e.g., in topography for different inertial loads onto a brisk finger extension, (2) if there is a difference, what kind of change is it, a global or regional one, (3) whether the early BP component (BP1) would be located in the fronto-central midline for finger extension with different loads, and (4) does the activation of the SMA occur prior to that of the primary motor area (MI)? The BP preceding voluntary self-initiated extensions of the right index finger movement with different loads (low load task with 100g and high load task with 200g) was recorded on the scalp using a 64 channel DC amplifier system. The Results showed: (1) Comparison of the two tasks showed that amplitudes of the BP were significantly different in Cz and CP53. (2) The comparison of Cz with CP53 showed that the BP amplitudes were higher in Cz than in CP53 for both tasks, especially the BP1 component. (3) The comparison of the 3 motor areas (SMA, contralateral and ipsilateral MI) showed that the BP was largest in the SMA and lowest in the ipsi-MI in both tasks. (4) The CSD laplacians showed that a clear current sink (=surface negativity) of the BP appeared on the scalp as early as 2.3 sec before EMG onset. The BP2 (a late component of BP following BP1 and starting about 0.5 sec prior to movement onset, which is lateralized towards the contralateral hemisphere) current sink was lateralized in form of the contralateral preponderance of negativity (CPN). The location of the motor potential (MP) current sink was similar than that of BP2, but the areas and the densities were highest. It is concluded that the more force is needed for finger extension against load, the larger the BP in motor areas. This constitutes a regional rather than a global effect in preparation for voluntary movement. The early BP component (BP1) started in the SMA, while BP2 and the MP were laterialized in form of the CPN. The activation of the SMA occurred considerably earlier than the one of the MI.

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References

  • Barrett, G., Shibasaki, H. and Neshige, R. Cortical potentials preceding voluntary movement: evidence for three periods of preparation in man. Electroenceph. clin. Neurophysiol., 1986, 63(4): 327–39.

    PubMed  Google Scholar 

  • Bauer, H., Korunka, C. and Leodolter, M. Technical requirements for high-quality scalp DC recordings. Electroenceph. clin. Neurophysiol., 1989, 72:545–547

    PubMed  Google Scholar 

  • Boschert, J. and Deecke, L. Cerebral potentials preceding voluntary toe, knee and hip movements and their vectors in human precentral gyrus. Brain Res., 1986, 376(1):175–179.

    PubMed  Google Scholar 

  • Bötzel, K., Plendl, H., Paulus, W. and Scherg, M. Bereitschaftspotential: is there a contribution of the supplementary motor area? Electroenceph. clin. Neurophysiol., 1993, 89(3): 187–96.

    PubMed  Google Scholar 

  • Brunia, C.H. and Vingerhoets, A.J. Opposite hemisphere differences in movement related potentials preceding foot and finger flexions. Biol. Psychol., 1981, 13: 261–9.

    PubMed  Google Scholar 

  • Deacon, D., Mehta, A., Tinsley, C. and Nousak, J.M. Variation in the latencies and aplitudes of N400 and NA as a function of semantic priming. Psychophysiology, 1995, 32: 560–570

    PubMed  Google Scholar 

  • Deecke, L., Grözinger, B. and Kornhuber, H.H. Voluntary finger movement in man: cerebral potentials and theory. Biol. Cybern., 1976, 23: 99–119.

    PubMed  Google Scholar 

  • Deecke, L. and Kornhuber, H.H. An electrical sign of participation of the mesial SMA cortex in human voluntary finger movements. Brain Res., 1978, 159: 473–476.

    PubMed  Google Scholar 

  • Deecke, L., Kornhuber, H.H., Lang, W., Lang, M. and Schreiber, H. Timing function of the frontal cortex in sequential motor and learning tasks. Hum. Neurobiol.. 1985, 4(3): 143–54.

    PubMed  Google Scholar 

  • Deecke, L., Lang, W., Heller, H.J., Hufnagl, M. and Kornhuber, H.H. Bereitschaftspotential as an indicator of movement preparation in supplementary motor area and motor cortex. Ciba. Found. Symp. 1987; 132: 231–50.

    PubMed  Google Scholar 

  • Deecke, L., Scheid, P. and Kornhuber, H.H. Distribution of readiness potential, Pre-motion positivity and motor potentials of the human cerebral cortex preceding voluntary finger movements. Ext. Brain Res., 1969, 7: 158–68.

    Google Scholar 

  • Dick, J.P., Benecke, R., Rothwell, J.C., Day, B.L., and Marsden, C.D. Simple and complex movements in a patient with infarction of the right supplementary motor area. Mov. Disord., 1986, 1(4): 255–66.

    PubMed  Google Scholar 

  • Eccles, J.C. The initiation of voluntary movement by the supplementary motor area. Arch Psychiat. Nervenkr. 1982, 231: 423–441.

    PubMed  Google Scholar 

  • Gaymard, B., Rivaud, S. and Pierrot Deseilligny, C. Role of the left and right Supplementary motor areas in memoryguided saccade sequences. Ann. Neurol., 1993, 34(3): 404–6.

    PubMed  Google Scholar 

  • Gevins, A., Cutillo, B., DuRousseau, D., Le, J., Leong, H., Martin, N., Smith, M.E., Bressler, S., Brickett, P., McLaughlin, J., Barbero, N., Laxer, K. Imaging the spatiotemporal dynamics of cognition with high-resolution evoked potential methods. Human Brain Mapping 1994, 1:101–116.

    Google Scholar 

  • Hyland, B., Chen, D.F., Maier, V., Palmeri, A. and Wiesendanger, M. What is the role of the supplementary motor area in movement initiation? Prog. Brain Res., 1989, 80: 431–6, discussion 427–30.

    PubMed  Google Scholar 

  • Ikeda, A., Luders, H.O., Burgess, R.C. and Shibasaki, H. Movement-related potentials associated with single and repetitive movements recorded from human supplementary motor area. Electroenceph. clin. Neurophysiol., 1993, 89 (4): 269–77.

    PubMed  Google Scholar 

  • Ikeda, A., Luders, H.O., Burgess, R.C. and Shibasaki, H. Movement-related potentials recorded from supplementary motor area and primary motor area. Brain, 1992, 115: 1017–1043.

    PubMed  Google Scholar 

  • Jahanshahi, M., Jenkins, I.H., Brown, R.G., Marsden, C.D., Passingham, R.E. and Brooks, D.J. Self-initiated versus externally triggered movements. I An investigation using measurement of regional cerebral blood flow with PET and movement-related potentials in normal and Parkinson's disease subjects. Brain, 1995, 118(pt 4):913–33.

    PubMed  Google Scholar 

  • Kornhuber, H.H. and Deecke, L. Hirnpotentialänderungen bei Willkürbewegungen und passive Bewegungen des Menschen: Bereitschaftspotential und reafferente Potentiale. Pflügers Arch., 1965, 284:1–17.

    Google Scholar 

  • Kristeva, R., Cheyne, D., Lang, W., Lindinger, G. and Deecke, L. Movement-related potentials accompanying unilateral and bilateral finger movements with different inertial loads. Electroenceph. clin. Neurophysiol., 1990, 75:410–418.

    PubMed  Google Scholar 

  • Lang, W., Lang, M., Uhl, F., Koska, C., Kornhuber, A. and Deecke, L. Negative cortical DC shifts preceding and accompanying simultaneous and sequential finger movements. Exp. Brain Res., 1988, 71(3): 579–87.

    PubMed  Google Scholar 

  • Lang, W., Zilch, O., Koska, C., Lindinger, G. and Deecke, L. Negative cortical DC shift preceding and accompanying simple and complex sequential movements. Exp. Brain Res., 1989, 74: 99–104.

    PubMed  Google Scholar 

  • Lang, W., Cheyne, D., Kristeva, R., Beisteiner, R., Lindinger, G. and Deecke, L. Three dimensional localization of SMA activity preceding voluntary movement. A study of electric and magnetic fields in a patient with infarction of the right supplementary motor area. Exp. Brain Res., 1991, 87(3): 688–95.

    PubMed  Google Scholar 

  • Nagamine, T., Kaji, R., Suwazono, S., Hamano, T., Shibasaki, H. and Kimura, J. Current source density mapping of somatosensory evoked responses following median and tibial nerve stimulation. Electroenceph. clin. Neurophysiol., 1992, 84: 248–256.

    PubMed  Google Scholar 

  • Neshinge, R., Luders, H. and Shibasaki, H. Recording of movement-related potentials from scalp and cortex in man. Brain, 1988, 111 (Pt 3): 719–36.

    PubMed  Google Scholar 

  • Nunez, P.L., Silberstein, R.B., Cadusch, P.J., Wijesinghe, R.S., Westdorp, A.F., and Srinivasan, R. A theoretical and experimental study of high resolution EEG based on surface Laplacians and cortical imaging. Electroencephalogr Clin Neurophysiol, 1994, 90:40–57.

    PubMed  Google Scholar 

  • Orgogozo, J.M. and Larsen, B. Activation of the SMA during voluntary movements in man suggests it works as a surpramotor area. Science, 1979, 206: 847–850.

    PubMed  Google Scholar 

  • Praamstra, P., Stegeman, D.F., Horstink, M.W.I.M. and Cools, A.R. Dipole source analysis suggests selective modulation of supplementary motor area contribution to the readiness potential. Electroencephalogr Clin Neurophysiol., 1996, 98:468–477.

    PubMed  Google Scholar 

  • Rektor I., Feve, A., Buser, P., Bathien, N., Lamarche, M. Intracerebral recordings of movement related readiness potentials: an exploration in epileptic patients. Electroencephalogr Clin Neurophysiol, 1994, 90:273–283.

    PubMed  Google Scholar 

  • Roland, P.E., Larsen, B., Lassen, N. A. and Skinhoj, E. SMA and other cortical areas in organization of voluntary movement in man. J. Neurophysiology, 1980, 43: 118–136.

    Google Scholar 

  • Shibasaki, H., Barrett, G., Halliday, E. and Halliday, A.M. Components of the movement — related cortical potentials and their scalp topography Electroenceph. clin. Neurophysiol., 1980, 49: 213–226

    PubMed  Google Scholar 

  • Shibasaki, H., Barrett, G., Halliday, E. and Halliday, A.M. Cortical potentials associated with voluntary foot movement in man. Electroenceph. clin. Neurophysiol., 1981, 49: 507–516

    Google Scholar 

  • Shibasaki, H., Sadato, N., Lyshkow, H., Yonekura, Y., Honda, M., Nagamine, T., Suwazono, S., Magata, Y., Ikeda, A., Miyazaki, M., Fukuyama, H., Asato, R. and Koniski, J. Both primary motor cortex and supplementary motor area play an important role in complex finger movement. Brain, 1993, 116 (Pt 6): 1387–98.

    PubMed  Google Scholar 

  • Simonetta, M. BP in a simple movement or in a motor sequene starting with the same simple movement. Electroenceph. clin. Neurophysiol., 1991; 81: 129–134

    PubMed  Google Scholar 

  • Tanji, J. The supplementary motor area in the cerebral cortex. Neurosci. Res., 1994, 19: 251–268

    PubMed  Google Scholar 

  • Tarkka, I.M. Electrical source localization of human movement-related cortical potentials. Int. J. Psychophysiol., 1994, 16(1): 81–88.

    PubMed  Google Scholar 

  • Van der Kamp, W., Rothwell, J.C., Thompson, P.D., Day, B.L. and Marsden, C.D. The movement related cortical potential is abnormal in patients with idiopathic torsion dystonia. Mov. Disord., 1995, 10(5): 630–3.

    PubMed  Google Scholar 

  • Wilke, J.T. and Lansing, R.W. Variations in the motor potential with force exerted during voluntary arm movement in man. Electroenceph. clin. Neurophysiol., 1973, 35: 259–265.

    PubMed  Google Scholar 

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The first author was supported by Austrian Academic Exchange Service (ÖAD) and International relative Program of Vienna University and would like to express his thanks.

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Cui, R.Q., Huter, D., Lang, W. et al. Multichannel DC current source density mapping of the Bereitschaftspotential in the supplementary and primary motor area preceding differently loaded movements. Brain Topogr 9, 83–94 (1996). https://doi.org/10.1007/BF01200708

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