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Updated: May 6, 2026

Corticospinal Excitability Modulation During Action Observation
Published on: December 31, 2013
Mirror-neuron system recruitment by action observation: effects of focal brain damage on mu suppression
Silvi Frenkel-Toledo1, Shlomo Bentin2, Anat Perry3
1Sackler Faculty of Medicine, Tel-Aviv University, Israel; Department of Neurological Rehabilitation, Loewenstein Hospital, Ra'anana, Israel.
Abstract:
Mu suppression is the attenuation of EEG power in the alpha frequency range (8-12 Hz), recorded over the sensorimotor cortex during execution and observation of motor actions. Based on this dual characteristic mu suppression is thought to signalize activation of a human analogue of the mirror neuron system (MNS) found in macaque monkeys. However, much uncertainty remains concerning its specificity and full significance. To further explore the hypothesized relationship between mu suppression and MNS activation, we investigated how it is affected by damage to cortical regions, including areas where the MNS is thought to reside. EEG was recorded in 33 first-event stroke patients during observation of video clips showing reaching and grasping hand movements. We examined the modulation of EEG oscillations at central and occipital sites, and analyzed separately the lower (8-10 Hz) and higher (10-12 Hz) segments of the alpha/mu range. Suppression was determined relative to observation of a non-biological movement. Normalized lesion data were used to investigate how damage to regions of the fronto-parietal cortex affects the pattern of suppression. The magnitude of mu suppression during action observation was significantly reduced in the affected hemisphere compared to the unaffected hemisphere. Differences between the hemispheres were significant at central (sensorimotor) sites but not at occipital (visual) sites. Total hemispheric volume loss did not correlate with mu suppression. Suppression in the lower mu range in the unaffected hemisphere (C3) correlated with lesion extent within the right inferior parietal cortex. Our lesion study supports the role of mu suppression as a marker of MNS activation, confirming previous studies in normal subjects.
Insights
Mu suppression, a marker of mirror neuron system (MNS) activation, is reduced in stroke patients with brain damage. This study confirms mu suppression
Area of Science:
- Neuroscience
- Cognitive Neuroscience
- Brain Imaging
Background:
- Mu suppression, an EEG signal over the sensorimotor cortex, is linked to the human mirror neuron system (MNS).
- The precise role and specificity of mu suppression as an MNS marker remain unclear.
- Investigating the impact of cortical lesions on mu suppression can elucidate its relationship with MNS function.
Purpose of the Study:
- To examine how damage to fronto-parietal cortical regions affects mu suppression during action observation.
- To determine if mu suppression is a reliable marker of MNS activation, even in the presence of brain injury.
Main Methods:
- Electroencephalography (EEG) was recorded from 33 stroke patients observing hand movements.
- EEG oscillations in the alpha/mu range (8-12 Hz) were analyzed at central and occipital sites.
- Lesion data were correlated with mu suppression patterns to assess the impact of brain damage.
Main Results:
- Mu suppression was significantly reduced in the affected hemisphere compared to the unaffected hemisphere, particularly at central sensorimotor sites.
- No significant differences in mu suppression were observed at occipital sites.
- Lesion extent in the right inferior parietal cortex correlated with lower mu range suppression in the unaffected hemisphere.
Conclusions:
- This lesion study supports the role of mu suppression as a marker of MNS activation.
- Mu suppression is sensitive to damage in specific cortical regions, particularly the fronto-parietal network.
- Findings align with previous studies in healthy individuals, reinforcing mu suppression's utility in understanding MNS function.

