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Subthalamic Nucleus Electrical Stimulation Modulates Calcium Activity of Nigral Astrocytes

BACKGROUND: The substantia nigra pars reticulata (SNr) is a major output nucleus of the basal ganglia, delivering inhibitory efferents to the relay nuclei of the thalamus. Pathological hyperactivity of SNr neurons is known to be responsible for some motor disorders e.g. in Parkinson's disease....

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Autores principales: Barat, Elodie, Boisseau, Sylvie, Bouyssières, Céline, Appaix, Florence, Savasta, Marc, Albrieux, Mireille
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2012
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3407058/
https://www.ncbi.nlm.nih.gov/pubmed/22848608
http://dx.doi.org/10.1371/journal.pone.0041793
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author Barat, Elodie
Boisseau, Sylvie
Bouyssières, Céline
Appaix, Florence
Savasta, Marc
Albrieux, Mireille
author_facet Barat, Elodie
Boisseau, Sylvie
Bouyssières, Céline
Appaix, Florence
Savasta, Marc
Albrieux, Mireille
author_sort Barat, Elodie
collection PubMed
description BACKGROUND: The substantia nigra pars reticulata (SNr) is a major output nucleus of the basal ganglia, delivering inhibitory efferents to the relay nuclei of the thalamus. Pathological hyperactivity of SNr neurons is known to be responsible for some motor disorders e.g. in Parkinson's disease. One way to restore this pathological activity is to electrically stimulate one of the SNr input, the excitatory subthalamic nucleus (STN), which has emerged as an effective treatment for parkinsonian patients. The neuronal network and signal processing of the basal ganglia are well known but, paradoxically, the role of astrocytes in the regulation of SNr activity has never been studied. PRINCIPAL FINDINGS: In this work, we developed a rat brain slice model to study the influence of spontaneous and induced excitability of afferent nuclei on SNr astrocytes calcium activity. Astrocytes represent the main cellular population in the SNr and display spontaneous calcium activities in basal conditions. Half of this activity is autonomous (i.e. independent of synaptic activity) while the other half is dependent on spontaneous glutamate and GABA release, probably controlled by the pace-maker activity of the pallido-nigral and subthalamo-nigral loops. Modification of the activity of the loops by STN electrical stimulation disrupted this astrocytic calcium excitability through an increase of glutamate and GABA releases. Astrocytic AMPA, mGlu and GABA(A) receptors were involved in this effect. SIGNIFICANCE: Astrocytes are now viewed as active components of neural networks but their role depends on the brain structure concerned. In the SNr, evoked activity prevails and autonomous calcium activity is lower than in the cortex or hippocampus. Our data therefore reflect a specific role of SNr astrocytes in sensing the STN-GPe-SNr loops activity and suggest that SNr astrocytes could potentially feedback on SNr neuronal activity. These findings have major implications given the position of SNr in the basal ganglia network.
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spelling pubmed-34070582012-07-30 Subthalamic Nucleus Electrical Stimulation Modulates Calcium Activity of Nigral Astrocytes Barat, Elodie Boisseau, Sylvie Bouyssières, Céline Appaix, Florence Savasta, Marc Albrieux, Mireille PLoS One Research Article BACKGROUND: The substantia nigra pars reticulata (SNr) is a major output nucleus of the basal ganglia, delivering inhibitory efferents to the relay nuclei of the thalamus. Pathological hyperactivity of SNr neurons is known to be responsible for some motor disorders e.g. in Parkinson's disease. One way to restore this pathological activity is to electrically stimulate one of the SNr input, the excitatory subthalamic nucleus (STN), which has emerged as an effective treatment for parkinsonian patients. The neuronal network and signal processing of the basal ganglia are well known but, paradoxically, the role of astrocytes in the regulation of SNr activity has never been studied. PRINCIPAL FINDINGS: In this work, we developed a rat brain slice model to study the influence of spontaneous and induced excitability of afferent nuclei on SNr astrocytes calcium activity. Astrocytes represent the main cellular population in the SNr and display spontaneous calcium activities in basal conditions. Half of this activity is autonomous (i.e. independent of synaptic activity) while the other half is dependent on spontaneous glutamate and GABA release, probably controlled by the pace-maker activity of the pallido-nigral and subthalamo-nigral loops. Modification of the activity of the loops by STN electrical stimulation disrupted this astrocytic calcium excitability through an increase of glutamate and GABA releases. Astrocytic AMPA, mGlu and GABA(A) receptors were involved in this effect. SIGNIFICANCE: Astrocytes are now viewed as active components of neural networks but their role depends on the brain structure concerned. In the SNr, evoked activity prevails and autonomous calcium activity is lower than in the cortex or hippocampus. Our data therefore reflect a specific role of SNr astrocytes in sensing the STN-GPe-SNr loops activity and suggest that SNr astrocytes could potentially feedback on SNr neuronal activity. These findings have major implications given the position of SNr in the basal ganglia network. Public Library of Science 2012-07-27 /pmc/articles/PMC3407058/ /pubmed/22848608 http://dx.doi.org/10.1371/journal.pone.0041793 Text en Barat et al. http://creativecommons.org/licenses/by/4.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution License, which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are properly credited.
spellingShingle Research Article
Barat, Elodie
Boisseau, Sylvie
Bouyssières, Céline
Appaix, Florence
Savasta, Marc
Albrieux, Mireille
Subthalamic Nucleus Electrical Stimulation Modulates Calcium Activity of Nigral Astrocytes
title Subthalamic Nucleus Electrical Stimulation Modulates Calcium Activity of Nigral Astrocytes
title_full Subthalamic Nucleus Electrical Stimulation Modulates Calcium Activity of Nigral Astrocytes
title_fullStr Subthalamic Nucleus Electrical Stimulation Modulates Calcium Activity of Nigral Astrocytes
title_full_unstemmed Subthalamic Nucleus Electrical Stimulation Modulates Calcium Activity of Nigral Astrocytes
title_short Subthalamic Nucleus Electrical Stimulation Modulates Calcium Activity of Nigral Astrocytes
title_sort subthalamic nucleus electrical stimulation modulates calcium activity of nigral astrocytes
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3407058/
https://www.ncbi.nlm.nih.gov/pubmed/22848608
http://dx.doi.org/10.1371/journal.pone.0041793
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