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.

Neuroimage
|October 22, 2013
PubMed

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.

Related Concept Videos