Publication

Immunogold characteristics of VGLUT3-positive GABAergic nerve terminals suggest corelease of glutamate

Résumé

There is compelling evidence that glutamate can act as a cotransmitter in the mammalian brain. Interestingly, the third vesicular glutamate transporter (VGLUT3) is primarily found in neurons that were anticipated to be nonglutamatergic. Whereas the function of VGLUT3 in acetylcholinergic and serotoninergic neurons has been elucidated, the role of VGLUT3 in neurons releasing gamma-aminobutyric acid (GABA) is not settled. We have previously shown that VGLUT3 is found together with the vesicular GABA transporter (VIAAT) on synaptic vesicle membranes in the hippocampus. Now we provide novel electron microscopic data from the rat hippocampus suggesting that glutamate is enriched in inhibitory nerve terminals containing VGLUT3 compared to those lacking VGLUT3. The opposite was found for GABA; VGLUT3-positive inhibitory terminals contained lower density of GABA labeling compared to VGLUT3-negative inhibitory terminals. In addition, semiquantitative confocal immunofluorescence showed that N-methyl-D-aspartate (NMDA)-receptor labeling was present more frequently in VGLUT3-positive/VIAAT-positive synapses versus in VGLUT3-negative/VIAAT-positive synapses. Electron microscopic immunogold data further suggest that NMDA receptors are enriched in VGLUT3 containing inhibitory terminals. Our data reveal new chemical characteristics of a subset of GABAergic interneurons in the hippocampus. The analyses suggest that glutamate is coreleased with GABA from hippocampal basket cell-synapses to act on NMDA receptors. J. Comp. Neurol. 523:2698–2713, 2015. © 2015 Wiley Periodicals, Inc.

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Concepts associés (37)
Récepteur NMDA
thumb|Représentation schématique d'un récepteur NMDA activé. Le glutamate et la glycine occupent leurs sites de liaison. S'il était occupé, le site allostérique causerait l'inactivation du récepteur. Les récepteurs NMDA requièrent la liaison de deux molécules de glutamate ou d'aspartate et deux de glycine. thumb|Structure de la molécule de NMDA. Les récepteurs NMDA (récepteur au N-méthyl-D-aspartate) sont des récepteurs ionotropes activés dans des conditions physiologiques par le glutamate et la glycine qui sont essentiels à la mémoire et à la plasticité synaptique.
Chemical synapse
Chemical synapses are biological junctions through which neurons' signals can be sent to each other and to non-neuronal cells such as those in muscles or glands. Chemical synapses allow neurons to form circuits within the central nervous system. They are crucial to the biological computations that underlie perception and thought. They allow the nervous system to connect to and control other systems of the body. At a chemical synapse, one neuron releases neurotransmitter molecules into a small space (the synaptic cleft) that is adjacent to another neuron.
Neurone
thumb|537x537px|Schéma complet d’un neurone. Un neurone, ou une cellule nerveuse, est une cellule excitable constituant l'unité fonctionnelle de la base du système nerveux. Les neurones assurent la transmission d'un signal bioélectrique appelé influx nerveux. Ils ont deux propriétés physiologiques : l'excitabilité, c'est-à-dire la capacité de répondre aux stimulations et de convertir celles-ci en impulsions nerveuses, et la conductivité, c'est-à-dire la capacité de transmettre les impulsions.
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