Distinct roles of synaptic and extrasynaptic GABAA receptors in striatal inhibition dynamics

Striatonigral and striatopallidal projecting medium spiny neurons (MSNs) express dopamine D1 (D1+) and D2 receptors (D2+), respectively. Both classes receive extensive GABAergic input via expression of synaptic, perisynaptic and extrasynaptic GABAA receptors. The activation patterns of different pre...

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Main Authors: Ruixi eLuo, John G Partridge, Stefano eVicini
Format: Article
Language:English
Published: Frontiers Media S.A. 2013-11-01
Series:Frontiers in Neural Circuits
Subjects:
Online Access:http://journal.frontiersin.org/Journal/10.3389/fncir.2013.00186/full
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spelling doaj-0d856bb3c98740f59266902bd693097a2020-11-25T01:06:25ZengFrontiers Media S.A.Frontiers in Neural Circuits1662-51102013-11-01710.3389/fncir.2013.0018659238Distinct roles of synaptic and extrasynaptic GABAA receptors in striatal inhibition dynamicsRuixi eLuo0John G Partridge1Stefano eVicini2Georgetown UniversityGeorgetown UniversityGeorgetown UniversityStriatonigral and striatopallidal projecting medium spiny neurons (MSNs) express dopamine D1 (D1+) and D2 receptors (D2+), respectively. Both classes receive extensive GABAergic input via expression of synaptic, perisynaptic and extrasynaptic GABAA receptors. The activation patterns of different presynaptic GABAergic neurons produce transient and sustained GABAA receptor-mediated conductance that fulfill distinct physiological roles. We performed single and dual whole cell recordings from striatal neurons in mice expressing fluorescent proteins in interneurons and MSNs. We report specific inhibitory dynamics produced by distinct activation patterns of presynaptic GABAergic neurons as source of synaptic, perisynaptic and extrasynaptic inhibition. Synaptic GABAA receptors in MSNs contain the α2, γ2 and a β subunit. In addition, there is evidence for the developmental increase of the α1 subunit that contributes to faster inhibitory postsynaptic current (IPSC). Tonic GABAergic currents in MSNs from adult mice are carried by extrasynaptic receptors containing the α4 and δ subunit, while in younger mice this current is mediated by receptors that contain the α5 subunit. Both forms of tonic currents are differentially expressed in D1+ and D2+ MSNs. This study extends these findings by relating presynaptic activation with pharmacological analysis of inhibitory conductance in mice where the β3 subunit is conditionally removed in fluorescently labeled D2+ MSNs and in mice with global deletion of the δ subunit. Our results show that responses to low doses of gaboxadol (2μM), a GABAA receptor agonist with preference to δ subunit, are abolished in the δ but not the β3 subunit knock out mice. This suggests that the β3 subunit is not a component of the adult extrasynaptic receptor pool, in contrast to what has been shown for tonic current in young mice. Deletion of the β3 subunit from D2+ MSNs however, removed slow spontaneous IPSCs, implicating its role in mediating synaptic inputhttp://journal.frontiersin.org/Journal/10.3389/fncir.2013.00186/fullGABAStriatumpatch-clamptonic inhibitionCre-lox genetics.
collection DOAJ
language English
format Article
sources DOAJ
author Ruixi eLuo
John G Partridge
Stefano eVicini
spellingShingle Ruixi eLuo
John G Partridge
Stefano eVicini
Distinct roles of synaptic and extrasynaptic GABAA receptors in striatal inhibition dynamics
Frontiers in Neural Circuits
GABA
Striatum
patch-clamp
tonic inhibition
Cre-lox genetics.
author_facet Ruixi eLuo
John G Partridge
Stefano eVicini
author_sort Ruixi eLuo
title Distinct roles of synaptic and extrasynaptic GABAA receptors in striatal inhibition dynamics
title_short Distinct roles of synaptic and extrasynaptic GABAA receptors in striatal inhibition dynamics
title_full Distinct roles of synaptic and extrasynaptic GABAA receptors in striatal inhibition dynamics
title_fullStr Distinct roles of synaptic and extrasynaptic GABAA receptors in striatal inhibition dynamics
title_full_unstemmed Distinct roles of synaptic and extrasynaptic GABAA receptors in striatal inhibition dynamics
title_sort distinct roles of synaptic and extrasynaptic gabaa receptors in striatal inhibition dynamics
publisher Frontiers Media S.A.
series Frontiers in Neural Circuits
issn 1662-5110
publishDate 2013-11-01
description Striatonigral and striatopallidal projecting medium spiny neurons (MSNs) express dopamine D1 (D1+) and D2 receptors (D2+), respectively. Both classes receive extensive GABAergic input via expression of synaptic, perisynaptic and extrasynaptic GABAA receptors. The activation patterns of different presynaptic GABAergic neurons produce transient and sustained GABAA receptor-mediated conductance that fulfill distinct physiological roles. We performed single and dual whole cell recordings from striatal neurons in mice expressing fluorescent proteins in interneurons and MSNs. We report specific inhibitory dynamics produced by distinct activation patterns of presynaptic GABAergic neurons as source of synaptic, perisynaptic and extrasynaptic inhibition. Synaptic GABAA receptors in MSNs contain the α2, γ2 and a β subunit. In addition, there is evidence for the developmental increase of the α1 subunit that contributes to faster inhibitory postsynaptic current (IPSC). Tonic GABAergic currents in MSNs from adult mice are carried by extrasynaptic receptors containing the α4 and δ subunit, while in younger mice this current is mediated by receptors that contain the α5 subunit. Both forms of tonic currents are differentially expressed in D1+ and D2+ MSNs. This study extends these findings by relating presynaptic activation with pharmacological analysis of inhibitory conductance in mice where the β3 subunit is conditionally removed in fluorescently labeled D2+ MSNs and in mice with global deletion of the δ subunit. Our results show that responses to low doses of gaboxadol (2μM), a GABAA receptor agonist with preference to δ subunit, are abolished in the δ but not the β3 subunit knock out mice. This suggests that the β3 subunit is not a component of the adult extrasynaptic receptor pool, in contrast to what has been shown for tonic current in young mice. Deletion of the β3 subunit from D2+ MSNs however, removed slow spontaneous IPSCs, implicating its role in mediating synaptic input
topic GABA
Striatum
patch-clamp
tonic inhibition
Cre-lox genetics.
url http://journal.frontiersin.org/Journal/10.3389/fncir.2013.00186/full
work_keys_str_mv AT ruixieluo distinctrolesofsynapticandextrasynapticgabaareceptorsinstriatalinhibitiondynamics
AT johngpartridge distinctrolesofsynapticandextrasynapticgabaareceptorsinstriatalinhibitiondynamics
AT stefanoevicini distinctrolesofsynapticandextrasynapticgabaareceptorsinstriatalinhibitiondynamics
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