Literature DB >> 8987749

Functional properties of AMPA and NMDA receptors expressed in identified types of basal ganglia neurons.

T Götz1, U Kraushaar, J Geiger, J Lübke, T Berger, P Jonas.   

Abstract

AMPA- and NMDA-type glutamate receptors (AMPARs and NMDARs) mediate excitatory synaptic transmission in the basal ganglia and may contribute to excitotoxic injury. We investigated the functional properties of AMPARs and NMDARs expressed by six main types of basal ganglia neurons in acute rat brain slices (principal neurons and cholinergic interneurons of striatum, GABAergic and dopaminergic neurons of substantia nigra, globus pallidus neurons, and subthalamic nucleus neurons) using fast application of glutamate to nucleated and outside-out membrane patches. AMPARs in different types of basal ganglia neurons were functionally distinct. Those expressed in striatal principal neurons exhibited the slowest gating (desensitization time constant tau = 11.5 msec, 1 mM glutamate, 22 degrees C), whereas those in striatal cholinergic interneurons showed the fastest gating (desensitization time constant tau = 3.6 msec). The lowest Ca2+ permeability of AMPARs was observed in nigral dopaminergic neurons (PCa/PNa = 0.10), whereas the highest Ca2+ permeability was found in subthalamic nucleus neurons (PCa/PNa = 1.17). NMDARs of different types of basal ganglia neurons were less variable in their functional properties; those expressed in nigral dopaminergic neurons exhibited the slowest gating (deactivation time constant of predominant fast component tau1 = 150 msec, 100 microM glutamate), and those of globus pallidus neurons showed the fastest gating (tau1 = 67 msec). The Mg2+ block of NMDARs was similar; the average chord conductance ratio g-60mV/g+40mV was 0.18-0.22 in 100 microM external Mg2+. Hence, AMPARs expressed in different types of basal ganglia neurons are markedly diverse, whereas NMDARs are less variable in functional properties that are relevant for excitatory synaptic transmission and neuronal vulnerability.

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Year:  1997        PMID: 8987749      PMCID: PMC6793708     

Source DB:  PubMed          Journal:  J Neurosci        ISSN: 0270-6474            Impact factor:   6.167


  47 in total

1.  Light and electron immunocytochemical localization of AMPA-selective glutamate receptors in the rat brain.

Authors:  R S Petralia; R J Wenthold
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2.  Kinetic analysis of interactions between kainate and AMPA: evidence for activation of a single receptor in mouse hippocampal neurons.

Authors:  D K Patneau; M L Mayer
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3.  Different glutamate receptor channels mediate fast excitatory synaptic currents in inhibitory and excitatory cortical neurons.

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4.  Calbindin D-28k and parvalbumin in the rat nervous system.

Authors:  M R Celio
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Review 5.  The functional anatomy of basal ganglia disorders.

Authors:  R L Albin; A B Young; J B Penney
Journal:  Trends Neurosci       Date:  1989-10       Impact factor: 13.837

6.  Patch-clamp recordings from the soma and dendrites of neurons in brain slices using infrared video microscopy.

Authors:  G J Stuart; H U Dodt; B Sakmann
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7.  Chronic quinolinic acid lesions in rats closely resemble Huntington's disease.

Authors:  M F Beal; R J Ferrante; K J Swartz; N W Kowall
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8.  Ca(2+)-permeable AMPA and NMDA receptor channels in basket cells of rat hippocampal dentate gyrus.

Authors:  D S Koh; J R Geiger; P Jonas; B Sakmann
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9.  Magnesium gates glutamate-activated channels in mouse central neurones.

Authors:  L Nowak; P Bregestovski; P Ascher; A Herbet; A Prochiantz
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10.  Terminals of subthalamonigral fibres are enriched with glutamate-like immunoreactivity: an electron microscopic, immunogold analysis in the cat.

Authors:  E Rinvik; O P Ottersen
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  54 in total

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2.  Long-term specification of AMPA receptor properties after synapse formation.

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4.  Subunit composition, kinetic, and permeation properties of AMPA receptors in single neocortical nonpyramidal cells.

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8.  Synaptic regulation of action potential timing in neostriatal cholinergic interneurons.

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Journal:  J Neurosci       Date:  1998-10-15       Impact factor: 6.167

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10.  Facilitation of currents through rat Ca2+-permeable AMPA receptor channels by activity-dependent relief from polyamine block.

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