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Published in: Experimental Brain Research 2/2006

01-02-2006 | Research Article

Short-latency afferent inhibition during selective finger movement

Authors: Bernhard Voller, Alan St Clair Gibson, James Dambrosia, Sarah Pirio Richardson, Mikhail Lomarev, Nguyet Dang, Mark Hallett

Published in: Experimental Brain Research | Issue 2/2006

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Abstract

During individual finger movement, two opposite phenomena occur at the level of the central nervous system that could affect other intrinsic hand muscle representations, unintentional co-activation, and surround inhibition (SI). At rest, excitability in the motor cortex (M1) is inhibited at about 20 ms after electric stimulation of a peripheral nerve [short-latency afferent inhibition (SAI)]. We sought to determine whether SAI changes during selective index finger movement. Effects were measured by the response to transcranial magnetic stimulation in two functionally distinct target muscles of the hand [abductor digiti minimi muscle (ADM), first dorsal interosseus muscle (FDI)]. An increase in SAI in the ADM during index finger movement compared to at rest could help explain the genesis of SI. Electrical stimulation was applied to either the little finger (homotopic for ADM, heterotopic for FDI) or the index finger (heterotopic for ADM, homotopic for FDI). During index finger movement, homotopic SAI was present only in the ADM, and the effect of peripheral stimulation was greater when there was less co-activation. Heterotopic SAI found at rest disappeared with movement. We conclude that during movement, homotopic SAI on the muscle in the surround of the intended movement may contribute to SI.
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Metadata
Title
Short-latency afferent inhibition during selective finger movement
Authors
Bernhard Voller
Alan St Clair Gibson
James Dambrosia
Sarah Pirio Richardson
Mikhail Lomarev
Nguyet Dang
Mark Hallett
Publication date
01-02-2006
Publisher
Springer-Verlag
Published in
Experimental Brain Research / Issue 2/2006
Print ISSN: 0014-4819
Electronic ISSN: 1432-1106
DOI
https://doi.org/10.1007/s00221-005-0140-9

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