Subthalamic beta dynamics mirror Parkinsonian bradykinesia months after neurostimulator implantation

BACKGROUND: Exaggerated oscillatory activity in the beta frequency band in the subthalamic nucleus has been suggested to be related to bradykinesia in Parkinson's disease (PD). However, studies seeking correlations between such activity in the local field potential and motor performance have be...

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Main Authors: Steiner, L, Neumann, W, Staub-Bartelt, F, Herz, D, Tan, H, Pogosyan, A, Kuhn, A, Brown, P
Format: Journal article
Language:English
Published: Wiley 2017
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author Steiner, L
Neumann, W
Staub-Bartelt, F
Herz, D
Tan, H
Pogosyan, A
Kuhn, A
Brown, P
author_facet Steiner, L
Neumann, W
Staub-Bartelt, F
Herz, D
Tan, H
Pogosyan, A
Kuhn, A
Brown, P
author_sort Steiner, L
collection OXFORD
description BACKGROUND: Exaggerated oscillatory activity in the beta frequency band in the subthalamic nucleus has been suggested to be related to bradykinesia in Parkinson's disease (PD). However, studies seeking correlations between such activity in the local field potential and motor performance have been limited to the immediate postoperative period, which may be confounded by a stun effect that leads to the temporary alleviation of PD deficits. METHODS: Local field potentials were recorded simultaneously with motor performance in PD patients several months after neurostimulator implantation. This was enabled by the chronic implantation of a pulse generator with the capacity to record and transmit local field potentials from deep brain stimulation electrodes. Specifically, we investigated oscillatory beta power dynamics and objective measures of bradykinesia during an upper limb alternating pronation and supination task in 9 patients. RESULTS: Although beta power was suppressed during continuously repeated movements, this suppression progressively diminished over time in tandem with a progressive decrement in the frequency and amplitude of movements. The relationship between changes within local field potentials and movement parameters was significant across patients, and not present for theta/alpha frequencies (5-12 Hz). Change in movement frequency furthermore related to beta power dynamics within patients. CONCLUSIONS: Changes in beta power are linked to changes in movement performance and the sequence effect of bradykinesia months after neurostimulator implantation. These findings provide further evidence that beta power may serve as a biomarker for bradykinesia and provide a suitable substrate for feedback control in chronic adaptive deep brain stimulation. © 2017 International Parkinson and Movement Disorder Society.
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spelling oxford-uuid:af845656-2fcd-492e-9f04-67bebca6d63e2022-03-27T03:50:10ZSubthalamic beta dynamics mirror Parkinsonian bradykinesia months after neurostimulator implantationJournal articlehttp://purl.org/coar/resource_type/c_dcae04bcuuid:af845656-2fcd-492e-9f04-67bebca6d63eEnglishSymplectic Elements at OxfordWiley2017Steiner, LNeumann, WStaub-Bartelt, FHerz, DTan, HPogosyan, AKuhn, ABrown, PBACKGROUND: Exaggerated oscillatory activity in the beta frequency band in the subthalamic nucleus has been suggested to be related to bradykinesia in Parkinson's disease (PD). However, studies seeking correlations between such activity in the local field potential and motor performance have been limited to the immediate postoperative period, which may be confounded by a stun effect that leads to the temporary alleviation of PD deficits. METHODS: Local field potentials were recorded simultaneously with motor performance in PD patients several months after neurostimulator implantation. This was enabled by the chronic implantation of a pulse generator with the capacity to record and transmit local field potentials from deep brain stimulation electrodes. Specifically, we investigated oscillatory beta power dynamics and objective measures of bradykinesia during an upper limb alternating pronation and supination task in 9 patients. RESULTS: Although beta power was suppressed during continuously repeated movements, this suppression progressively diminished over time in tandem with a progressive decrement in the frequency and amplitude of movements. The relationship between changes within local field potentials and movement parameters was significant across patients, and not present for theta/alpha frequencies (5-12 Hz). Change in movement frequency furthermore related to beta power dynamics within patients. CONCLUSIONS: Changes in beta power are linked to changes in movement performance and the sequence effect of bradykinesia months after neurostimulator implantation. These findings provide further evidence that beta power may serve as a biomarker for bradykinesia and provide a suitable substrate for feedback control in chronic adaptive deep brain stimulation. © 2017 International Parkinson and Movement Disorder Society.
spellingShingle Steiner, L
Neumann, W
Staub-Bartelt, F
Herz, D
Tan, H
Pogosyan, A
Kuhn, A
Brown, P
Subthalamic beta dynamics mirror Parkinsonian bradykinesia months after neurostimulator implantation
title Subthalamic beta dynamics mirror Parkinsonian bradykinesia months after neurostimulator implantation
title_full Subthalamic beta dynamics mirror Parkinsonian bradykinesia months after neurostimulator implantation
title_fullStr Subthalamic beta dynamics mirror Parkinsonian bradykinesia months after neurostimulator implantation
title_full_unstemmed Subthalamic beta dynamics mirror Parkinsonian bradykinesia months after neurostimulator implantation
title_short Subthalamic beta dynamics mirror Parkinsonian bradykinesia months after neurostimulator implantation
title_sort subthalamic beta dynamics mirror parkinsonian bradykinesia months after neurostimulator implantation
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