Searching for just a few words should be enough to get started. If you need to make more complex queries, use the tips below to guide you.
Article type: Research Article
Authors: Thirugnanasambandam, Nivethida; ; | Sparing, Roland; | Dafotakis, Manuel | Meister, Ingo G. | Paulus, Walter | Nitsche, Michael A. | Fink, Gereon R.;
Affiliations: Institute of Neurosciences and Medicine (INM-3), Cognitive Neurology Section, Research Centre Juelich, Germany | Department for Clinical Neurophysiology, Georg-August-University, Goettingen, Germany | Department of Neurology, University Hospital Cologne, Cologne, Germany
Note: [] Corresponding author: Priv.-Doz. Dr. Roland Sparing, M.D., Department of Neurology, University Hospital Cologne, Cologne, Germany. Tel.: +49 221 478 6191; Fax: +49 221 478 97282; E-mail: [email protected]
Abstract: Background and Purpose: Neuroplastic alterations of cortical excitability and activity represent the likely neurophysiological foundation of learning and memory formation. Beyond their induction, alterations of these processes by subsequent modification of cortical activity, termed metaplasticity, came into the focus of interest recently. Animal slice experiments demonstrated that neuroplastic excitability enhancements, or diminutions, can be abolished by consecutive subthreshold stimulation. These processes, termed de-potentiation, and de-depression, have so far not been explored in humans. Methods: We combined neuroplasticity induction by transcranial direct current stimulation (tDCS) applied to the hand area of primary motor cortex (M1), which can be used to induce long-lasting excitability enhancements or reductions, dependent on the polarity of stimulation, with short-lasting voluntary muscle contraction (VMC), which itself does not induce plastic cortical excitability changes. Corticospinal and intra-cortical M1 excitability were monitored by different transcranial magnetic stimulation (TMS) protocols. Results: VMC reduced or tended to reverse the anodal tDCS-driven motor cortical excitability enhancement and the cathodal tDCS-induced excitability diminution. Our findings thus demonstrate de-potentiation- and de-depression-like phenomena at the system level in the human motor cortex. Conclusion: This neurophysiological study may contribute to a better understanding of the balance between induction and reversal of plasticity associated with motor learning and rehabilitation processes.
Keywords: Transcranial direct current stimulation (tDCS), transcranial magnetic stimulation (TMS), voluntary muscle contraction, de-potentiation, de-depression
DOI: 10.3233/RNN-2011-0601
Journal: Restorative Neurology and Neuroscience, vol. 29, no. 5, pp. 311-320, 2011
IOS Press, Inc.
6751 Tepper Drive
Clifton, VA 20124
USA
Tel: +1 703 830 6300
Fax: +1 703 830 2300
[email protected]
For editorial issues, like the status of your submitted paper or proposals, write to [email protected]
IOS Press
Nieuwe Hemweg 6B
1013 BG Amsterdam
The Netherlands
Tel: +31 20 688 3355
Fax: +31 20 687 0091
[email protected]
For editorial issues, permissions, book requests, submissions and proceedings, contact the Amsterdam office [email protected]
Inspirees International (China Office)
Ciyunsi Beili 207(CapitaLand), Bld 1, 7-901
100025, Beijing
China
Free service line: 400 661 8717
Fax: +86 10 8446 7947
[email protected]
For editorial issues, like the status of your submitted paper or proposals, write to [email protected]
如果您在出版方面需要帮助或有任何建, 件至: [email protected]