Literature DB >> 21714010

High-frequency deep brain stimulation of the putamen improves bradykinesia in Parkinson's disease.

Erwin B Montgomery1, He Huang, Harrison C Walker, Barton L Guthrie, Ray L Watts.   

Abstract

Deep brain stimulation is effective for a wide range of neurological disorders; however, its mechanisms of action remain unclear. With respect to Parkinson's disease, the existence of multiple effective targets suggests that putamen stimulation also may be effective and raises questions as to the mechanisms of action. Are there as many mechanisms of action as there are effective targets or some single or small set of mechanisms common to all effective targets? During the course of routine surgery of the globus pallidus interna in patients with Parkinson's disease, the deep brain stimulation lead was placed in the putamen en route to the globus pallidus interna. Recordings of hand opening and closing during high-frequency and no stimulation were made. Speed of the movements, based on the amplitude and frequency of the repetitive hand movements as well as the decay in amplitude, were studied. Hand speed in 6 subjects was statistically significantly faster during active deep brain stimulation than the no-stimulation condition. There were no statistically significant differences in decay in the amplitude of hand movements. High-frequency deep brain stimulation of the putamen improves bradykinesia in a hand-opening and -closing task in patients with Parkinson's disease. Consequently, high-frequency deep brain stimulation of virtually every structure in the basal ganglia-thalamic-cortical system improves bradykinesia. These observations, together with microelectrode recordings reported in the literature, argue that deep brain stimulation effects may be system specific and not structure specific.
Copyright © 2011 Movement Disorder Society.

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Year:  2011        PMID: 21714010      PMCID: PMC4151533          DOI: 10.1002/mds.23842

Source DB:  PubMed          Journal:  Mov Disord        ISSN: 0885-3185            Impact factor:   10.338


  23 in total

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2.  Effects of deep brain stimulation and medication on bradykinesia and muscle activation in Parkinson's disease.

Authors:  David E Vaillancourt; Janey Prodoehl; Leo Verhagen Metman; Roy A Bakay; Daniel M Corcos
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4.  Subthalamic nucleus deep brain stimulus evoked potentials: physiological and therapeutic implications.

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5.  Acute stimulation in the external segment of the globus pallidus improves parkinsonian motor signs.

Authors:  Jerrold L Vitek; Takao Hashimoto; John Peoples; Mahlon R DeLong; Roy A E Bakay
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6.  Overlapping corticostriatal projections from the supplementary motor area and the primary motor cortex in the macaque monkey: an anterograde double labeling study.

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Authors:  Harrison C Walker; Ray L Watts; Christian J Schrandt; He Huang; Stephanie L Guthrie; Barton L Guthrie; Erwin B Montgomery
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  9 in total

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5.  Reinforcement mechanisms in putamen during high frequency STN DBS: A point process study.

Authors:  Sabato Santaniello; John T Gale; Erwin B Montgomery; Sridevi V Sarma
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6.  The epistemology of Deep Brain Stimulation and neuronal pathophysiology.

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7.  Signal recovery from stimulation artifacts in intracranial recordings with dictionary learning.

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8.  Uncovering the underlying mechanisms and whole-brain dynamics of deep brain stimulation for Parkinson's disease.

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9.  Functional Connectivity-Based Modelling Simulates Subject-Specific Network Spreading Effects of Focal Brain Stimulation.

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  9 in total

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