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Updated: Aug 27, 2026

Intracortical Inhibition Within the Primary Motor Cortex Can Be Modulated by Changing the Focus of Attention
Published on: September 11, 2017
Cortical adaptation following motor fatigue: Dynamic changes in primary motor cortex excitability in healthy young
Simone Aloisio1, Massimiliano Passaretti2, Martina De Riggi3
1Department of Human Neurosciences, Sapienza University of Rome, Italy; Department of Translational and Precision Medicine, Sapienza University of Rome, Rome, Italy.
Objective:
Motor fatigue induces task-specific behavioral and corticospinal changes, but its post-task after-effects remain poorly understood. We investigated whether sustained repetitive finger tapping (FT) elicits time-dependent modulation of corticospinal excitability in healthy young adults and whether these changes relate to the degree of motor performance deterioration.
Methods:
Twenty healthy young participants performed 10 consecutive FT blocks followed by a recovery trial at the final post-task assessment. Motor performance was quantified by kinematic analysis of movement amplitude, velocity, movement rhythm, and intra-trial performance decay. Transcranial magnetic stimulation was performed at baseline and up to 60 min after task completion to assess resting motor threshold (RMT), single-pulse motor evoked potentials (SP-MEPs), short-interval intracortical inhibition (SICI; 2-ms interstimulus interval), intracortical facilitation (ICF; 10-ms interstimulus interval), cortical silent period (CSP), and F-wave measures.
Results:
FT induced reductions in movement amplitude and velocity, with a significant increase in intra-trial velocity decrement followed by behavioral recovery. Corticospinal excitability increased after FT, as reflected by reduced RMT and enhanced SP-MEP amplitudes, before returning toward baseline. No significant changes were observed in SICI, ICF, CSP, or F-wave measures. The degree of intra-trial velocity decrement correlated with post-task SP-MEP enhancement, indicating that corticospinal modulation scaled with motor performance deterioration.
Conclusions:
Sustained repetitive FT induces a reversible and state-dependent modulation of corticospinal excitability following physiological motor fatigue.
Significance:
This study characterizes the temporal profile of post-task corticospinal adaptation following physiological motor fatigue and provides a translational framework for investigating altered compensatory responses in neurological disorders.

