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Deep brain stimulation mechanisms: the control of network activity via neurochemistry modulation
Author(s) -
McIntyre Cameron C.,
Anderson Ross W.
Publication year - 2016
Publication title -
journal of neurochemistry
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 1.75
H-Index - 229
eISSN - 1471-4159
pISSN - 0022-3042
DOI - 10.1111/jnc.13649
Subject(s) - deep brain stimulation , neuroscience , stimulation , neurochemistry , central nervous system , brain stimulation , neurophysiology , premovement neuronal activity , parkinson's disease , neurology , medicine , psychology , disease , pathology
Abstract Deep brain stimulation (DBS) has revolutionized the clinical care of late‐stage Parkinson's disease and shows promise for improving the treatment of intractable neuropsychiatric disorders. However, after over 25 years of clinical experience, numerous questions still remain on the neurophysiological basis for the therapeutic mechanisms of action. At their fundamental core, the general purpose of electrical stimulation therapies in the nervous system are to use the applied electric field to manipulate the opening and closing of voltage‐gated sodium channels on neurons, generate stimulation induced action potentials, and subsequently, control the release of neurotransmitters in targeted pathways. Historically, DBS mechanisms research has focused on characterizing the effects of stimulation on neurons and the resulting impact on neuronal network activity. However, when electrodes are placed within the central nervous system, glia are also being directly (and indirectly) influenced by the stimulation. Mounting evidence shows that non‐neuronal tissue can play an important role in modulating the neurochemistry changes induced by DBS. The goal of this review is to evaluate how DBS effects on both neuronal and non‐neuronal tissue can potentially work together to suppress oscillatory activity (and/or information transfer) between brain regions. These resulting effects of ~ 100 Hz electrical stimulation help explain how DBS can disrupt pathological network activity in the brain and generate therapeutic effects in patients.Deep brain stimulation is an effective clinical technology, but detailed therapeutic mechanisms remain undefined. This review provides an overview of the leading hypotheses, which focus on stimulation‐induced disruption of network oscillations and integrates possible roles for non‐neuronal tissue in explaining the clinical response to therapeutic stimulation. This article is part of a special issue on Parkinson disease .

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