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Spatial sensorimotor mismatch increases the excitability of the primary somatosensory cortex: Insight from an EEG-Virtual Reality Study

Cortex

Abstract


Under typical conditions, the somatosensory system maintains stable functionality. However, the somatosensory cortex can rapidly reorganize in response to sensory input changes, as demonstrated by studies on sensory deprivation and experience-dependent plasticity. Nevertheless, somatosensory plasticity related to unusual sensorimotor activation, such as spatial incongruency between motor commands and somatosensory feedback patterns during body-environment interactions, remains less investigated. This study aims to extend the evidence for functional reorganization of the somatosensory cortex by investigating the interdependency, in terms of spatial congruency, between motor and somatosensory activity during environmental interactions. We employed an innovative virtual reality (VR) paradigm to investigate the effects of spatial mismatch in sensorimotor loops, by dissociating motor and somatosensory components in the (body) spatial domain during sensorimotor interactions. Participants (n = 21) performed two experimental sessions composed of 10 mins of an interaction task in VR, whereby they interacted with a virtual object with their right hand and received either congruent (on the right hand) or incongruent (on their left ankle) sensory tactile feedback. To assess changes in somatosensory processing, we measured EEG-somatosensory evoked potentials from the right median nerve stimulation before and after the task. Our results evidenced increased excitability in the early component of somatosensory evoked potentials (P45) following spatially mismatched conditions, with an opposite trend (decrease) on the congruent condition. These findings may suggest functional changes in the primary somatosensory cortex (SI), likely driven by the temporal coupling of neural activity from unrelated body parts during the task. However, attentional mechanisms may also contribute to this effect. While preliminary, these results open new avenues for investigating sensorimotor adaptation driven by repeated associative activity between motor and somatosensory cortices during active interactions.

Cortex Vol. 191 Pages 13 2025


Authors

Girondini, M., Bertoni, T., Montanaro, M., Serino, A., & Gallace, A.

  https://doi.org/10.1016/j.cortex.2025.07.010

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