Literature DB >> 27693941

Animal models of transcranial direct current stimulation: Methods and mechanisms.

Mark P Jackson1, Asif Rahman1, Belen Lafon1, Gregory Kronberg1, Doris Ling1, Lucas C Parra1, Marom Bikson2.   

Abstract

The objective of this review is to summarize the contribution of animal research using direct current stimulation (DCS) to our understanding of the physiological effects of transcranial direct current stimulation (tDCS). We comprehensively address experimental methodology in animal studies, broadly classified as: (1) transcranial stimulation; (2) direct cortical stimulation in vivo and (3) in vitro models. In each case advantages and disadvantages for translational research are discussed including dose translation and the overarching "quasi-uniform" assumption, which underpins translational relevance in all animal models of tDCS. Terminology such as anode, cathode, inward current, outward current, current density, electric field, and uniform are defined. Though we put key animal experiments spanning decades in perspective, our goal is not simply an exhaustive cataloging of relevant animal studies, but rather to put them in context of ongoing efforts to improve tDCS. Cellular targets, including excitatory neuronal somas, dendrites, axons, interneurons, glial cells, and endothelial cells are considered. We emphasize neurons are always depolarized and hyperpolarized such that effects of DCS on neuronal excitability can only be evaluated within subcellular regions of the neuron. Findings from animal studies on the effects of DCS on plasticity (LTP/LTD) and network oscillations are reviewed extensively. Any endogenous phenomena dependent on membrane potential changes are, in theory, susceptible to modulation by DCS. The relevance of morphological changes (galvanotropy) to tDCS is also considered, as we suggest microscopic migration of axon terminals or dendritic spines may be relevant during tDCS. A majority of clinical studies using tDCS employ a simplistic dose strategy where excitability is singularly increased or decreased under the anode and cathode, respectively. We discuss how this strategy, itself based on classic animal studies, cannot account for the complexity of normal and pathological brain function, and how recent studies have already indicated more sophisticated approaches are necessary. One tDCS theory regarding "functional targeting" suggests the specificity of tDCS effects are possible by modulating ongoing function (plasticity). Use of animal models of disease are summarized including pain, movement disorders, stroke, and epilepsy.
Copyright © 2016 International Federation of Clinical Neurophysiology. Published by Elsevier Ireland Ltd. All rights reserved.

Entities:  

Keywords:  Animal models; Galvanotropy; Long term potentiation; Noninvasive brain stimulation; Oscillations; Synaptic plasticity; Transcranial direct current stimulation

Mesh:

Year:  2016        PMID: 27693941      PMCID: PMC5083183          DOI: 10.1016/j.clinph.2016.08.016

Source DB:  PubMed          Journal:  Clin Neurophysiol        ISSN: 1388-2457            Impact factor:   3.708


  186 in total

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9.  Intracellular calcium oscillations in astrocytes: a highly plastic, bidirectional form of communication between neurons and astrocytes in situ.

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10.  Acute working memory improvement after tDCS in antidepressant-free patients with major depressive disorder.

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  83 in total

1.  Adaptive current tDCS up to 4 mA.

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Review 2.  Low intensity transcranial electric stimulation: Safety, ethical, legal regulatory and application guidelines.

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Journal:  Clin Neurophysiol       Date:  2017-06-19       Impact factor: 3.708

3.  tDCS Modulates Visual Gamma Oscillations and Basal Alpha Activity in Occipital Cortices: Evidence from MEG.

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5.  Long-lasting increase in axonal excitability after epidurally applied DC.

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6.  Magnetic Entropy as a Proposed Gating Mechanism for Magnetogenetic Ion Channels.

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7.  Safety parameter considerations of anodal transcranial Direct Current Stimulation in rats.

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8.  Exploring new transcranial electrical stimulation strategies to modulate brain function in animal models.

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9.  The effects of lithium chloride and cathodal/anodal transcranial direct current stimulation on conditional fear memory changes and the level of p-mTOR/mTOR in PFC of male NMRI mice.

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Journal:  Metab Brain Dis       Date:  2020-11-21       Impact factor: 3.584

Review 10.  Advances in neurocognitive rehabilitation research from 1992 to 2017: The ascension of neural plasticity.

Authors:  Bruce Crosson; Benjamin M Hampstead; Lisa C Krishnamurthy; Venkatagiri Krishnamurthy; Keith M McGregor; Joe R Nocera; Simone Roberts; Amy D Rodriguez; Stella M Tran
Journal:  Neuropsychology       Date:  2017-08-31       Impact factor: 3.295

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