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January 23, 2026Brain0 citationsOpen Access

Spatial propagation of movement-related basal ganglia activity predicts parkinsonian motor state

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AAAlberto AvernaMSMário Costa SousaEBElena Bernasconi

Key Points

  • To investigate the spatial propagation of gamma activity in the basal ganglia during movement and its role in motor encoding and impairment in Parkinson's disease.
  • Recorded intraoperative local field potentials from the subthalamic nucleus in 63 hemispheres of Parkinson’s disease patients.
  • Analyzed a frequency spectrum (60–400 Hz) including movement-related synchronisation and its correlation with muscle activity.
  • Assessed temporal dynamics and spatial propagation of activity in relation to clinical impairment and levodopa response.
  • Movement-related synchronisation was observed in both contralateral and ipsilateral STN across all sub-bands.
  • Unique spatial hotspots were identified that propagated along the inferior-superior axis of the STN.
  • High-frequency propagation above 110 Hz inversely correlated with dopamine-related motor improvement.

Abstract

Abstract Movement-related gamma activity (60 Hz) in cortico-basal ganglia networks reflects pro-kinetic synchronisation dynamics. While in the cortex these temporal dynamics are known to unfold spatially across topographically distributed networks, it remains unclear whether a similar spatial propagation occurs within the basal ganglia, and how such spatial encoding may contribute to both physiological and disease-related mechanisms. The subthalamic nucleus (STN) is a key integrative hub for motor processing within the basal ganglia-cortical circuitry. At rest, STN activity is topographically distributed according to its spectral frequency components. To assess whether this spectral topography is dynamic and underlies movement encoding, we dissected the spatiotemporal properties of STN local field potentials recorded intraoperatively at rest and during movement across 63 hemispheres from patients with Parkinson’s disease (PD). Using multi-contact deep brain stimulation leads, we captured high-resolution anatomical signal dynamics and contrasted a broad frequency spectrum (60–400 Hz), including high-gamma, fast-gamma, slow high-frequency oscillations, and fast high-frequency oscillations. Moreover, we compared these signals to upper limb muscle activity and movement-related beta desynchronisation, and examined their association to clinical impairment and levodopa responsiveness. All sub-bands exhibited significant movement-related synchronisation in both the contralateral and ipsilateral STN, however with distinct magnitude and temporal dynamics. Presence and degree of temporal locking to muscle activity and inverse relationship to movement-related beta desynchronisation also varied by sub-band. Importantly, each sub-band exhibited spatially-segregated hotspots located within the STN that propagate primarily along the inferior–superior axis, yet in band-specific directions. This spatial propagation evolved throughout the movement period but temporally decoupled from synchronization magnitude, indicating that spatial dynamics reflect a distinct property relevant for motor encoding. Notably, propagation of frequencies above 110 Hz inversely correlated with dopamine-related motor improvement, suggesting that exaggerated spatial dynamics may reflect compensatory mechanisms secondary to neurodegeneration. These findings demonstrated that synchronisation within the basal ganglia is not a spatially static phenomenon but rather unfolds in space which expands on the current understanding of basal ganglia mechanism. High-frequency propagation may serve as a potential marker for motor impairment in PD, opening new avenues for spectro-behavioral research and spatially-informed neuromodulation strategies.

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Cite This Study

Averna et al. (2026) studied this question.

synapsesocial.com/papers/69730f18c8125b09b0d1ee60https://doi.org/10.1093/brain/awag019
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