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Depolarization-induced bursts of miniature synaptic currents in individual synapses of developing cerebellum.
Le Guellec, Bastien; Gomez, Laura C; Malagon, Gerardo; Collin, Thibault; Marty, Alain.
Afiliação
  • Le Guellec B; Université Paris Cité , Saints Pères Paris Institute for the Neurosciences, CNRS, Paris, France.
  • Gomez LC; Université Paris Cité , Saints Pères Paris Institute for the Neurosciences, CNRS, Paris, France.
  • Malagon G; Université Paris Cité , Saints Pères Paris Institute for the Neurosciences, CNRS, Paris, France.
  • Collin T; Université Paris Cité , Saints Pères Paris Institute for the Neurosciences, CNRS, Paris, France.
  • Marty A; Université Paris Cité , Saints Pères Paris Institute for the Neurosciences, CNRS, Paris, France.
J Gen Physiol ; 155(5)2023 05 01.
Article em En | MEDLINE | ID: mdl-37010482
In central synapses, spontaneous transmitter release observed in the absence of action potential firing is often considered as a random process lacking time or space specificity. However, when studying miniature glutamatergic currents at cerebellar synapses between parallel fibers and molecular layer interneurons, we found that these currents were sometimes organized in bursts of events occurring at high frequency (about 30 Hz). Bursts displayed homogeneous quantal size amplitudes. Furthermore, in the presence of the desensitization inhibitor cyclothiazide, successive events within a burst displayed quantal amplitude occlusion. Based on these findings, we conclude that bursts originate in individual synapses. Bursts were enhanced by increasing either the external potassium concentration or the external calcium concentration, and they were strongly inhibited when blocking voltage-gated calcium channels by cadmium. Bursts were prevalent in elevated potassium concentration during the formation of the molecular layer but were infrequent later in development. Since postsynaptic AMPA receptors are largely calcium permeant in developing parallel fiber-interneuron synapses, we propose that bursts involve presynaptic calcium transients implicating presynaptic voltage-gated calcium channels, together with postsynaptic calcium transients implicating postsynaptic AMPA receptors. These simultaneous pre- and postsynaptic calcium transients may contribute to the formation and/or stabilization of synaptic connections.
Assuntos

Texto completo: 1 Coleções: 01-internacional Base de dados: MEDLINE Idioma: En Ano de publicação: 2023 Tipo de documento: Article

Texto completo: 1 Coleções: 01-internacional Base de dados: MEDLINE Idioma: En Ano de publicação: 2023 Tipo de documento: Article