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Inhibitory collaterals in genetically identified medium spiny neurons in mouse primary corticostriatal cultures

Inhibitory collaterals between striatal medium spiny neuron (MSN) subtypes have been shown to critically influence striatal output. However, the low rate of inhibitory collateral detection between striatal MSNs in conventional ex vivo slice recordings has made the study of these connections challeng...

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Autores principales: Lalchandani, Rupa R, Vicini, Stefano
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Blackwell Publishing Ltd 2013
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3871478/
https://www.ncbi.nlm.nih.gov/pubmed/24400165
http://dx.doi.org/10.1002/phy2.164
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author Lalchandani, Rupa R
Vicini, Stefano
author_facet Lalchandani, Rupa R
Vicini, Stefano
author_sort Lalchandani, Rupa R
collection PubMed
description Inhibitory collaterals between striatal medium spiny neuron (MSN) subtypes have been shown to critically influence striatal output. However, the low rate of inhibitory collateral detection between striatal MSNs in conventional ex vivo slice recordings has made the study of these connections challenging. Furthermore, most studies on MSN collaterals have been conducted either blind or in models, in which only one MSN subtype can be distinguished. Here, we describe a dissociated culture system using striatal and cortical neurons harvested from genetically modified mice at postnatal day 0. These mice express tdTomato and enhanced green fluorescent protein (EGFP) downstream of the dopamine D1 and D2 receptor promoters, respectively, allowing for simultaneous distinction between the two major subtypes of MSNs. In vitro, these neurons develop spines, hyperpolarized resting membrane potentials and exhibit up-and-down states, while also maintaining expression of both fluorophores through time. Using paired whole-cell patch-clamp recordings from identified MSNs at 14 days in vitro, we are able to detect a much higher rate of inhibitory functional synapses than what has been previously reported in slice recordings. These collateral synapses release γ-Aminobutyric acid (GABA) and shape the firing patters of other MSNs. Although reduced in vitro models have a number of inherent limitations, the cultures described here provide a unique opportunity to study frequently observed functional collaterals between identifiable MSNs. Additionally, cultured neurons allow for control of the extracellular environment, with the potential to investigate pharmacological regulation of inhibitory MSNs collaterals.
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spelling pubmed-38714782014-01-07 Inhibitory collaterals in genetically identified medium spiny neurons in mouse primary corticostriatal cultures Lalchandani, Rupa R Vicini, Stefano Physiol Rep Original Research Inhibitory collaterals between striatal medium spiny neuron (MSN) subtypes have been shown to critically influence striatal output. However, the low rate of inhibitory collateral detection between striatal MSNs in conventional ex vivo slice recordings has made the study of these connections challenging. Furthermore, most studies on MSN collaterals have been conducted either blind or in models, in which only one MSN subtype can be distinguished. Here, we describe a dissociated culture system using striatal and cortical neurons harvested from genetically modified mice at postnatal day 0. These mice express tdTomato and enhanced green fluorescent protein (EGFP) downstream of the dopamine D1 and D2 receptor promoters, respectively, allowing for simultaneous distinction between the two major subtypes of MSNs. In vitro, these neurons develop spines, hyperpolarized resting membrane potentials and exhibit up-and-down states, while also maintaining expression of both fluorophores through time. Using paired whole-cell patch-clamp recordings from identified MSNs at 14 days in vitro, we are able to detect a much higher rate of inhibitory functional synapses than what has been previously reported in slice recordings. These collateral synapses release γ-Aminobutyric acid (GABA) and shape the firing patters of other MSNs. Although reduced in vitro models have a number of inherent limitations, the cultures described here provide a unique opportunity to study frequently observed functional collaterals between identifiable MSNs. Additionally, cultured neurons allow for control of the extracellular environment, with the potential to investigate pharmacological regulation of inhibitory MSNs collaterals. Blackwell Publishing Ltd 2013-11 2013-11-24 /pmc/articles/PMC3871478/ /pubmed/24400165 http://dx.doi.org/10.1002/phy2.164 Text en © 2013 The Authors. Physiological Reports published by Wiley Periodicals, Inc. on behalf of the American Physiological Society and The Physiological Society http://creativecommons.org/licenses/by/2.5/ Re-use of this article is permitted in accordance with the Creative Commons Deed, Attribution 2.5, which does not permit commercial exploitation.
spellingShingle Original Research
Lalchandani, Rupa R
Vicini, Stefano
Inhibitory collaterals in genetically identified medium spiny neurons in mouse primary corticostriatal cultures
title Inhibitory collaterals in genetically identified medium spiny neurons in mouse primary corticostriatal cultures
title_full Inhibitory collaterals in genetically identified medium spiny neurons in mouse primary corticostriatal cultures
title_fullStr Inhibitory collaterals in genetically identified medium spiny neurons in mouse primary corticostriatal cultures
title_full_unstemmed Inhibitory collaterals in genetically identified medium spiny neurons in mouse primary corticostriatal cultures
title_short Inhibitory collaterals in genetically identified medium spiny neurons in mouse primary corticostriatal cultures
title_sort inhibitory collaterals in genetically identified medium spiny neurons in mouse primary corticostriatal cultures
topic Original Research
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3871478/
https://www.ncbi.nlm.nih.gov/pubmed/24400165
http://dx.doi.org/10.1002/phy2.164
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