Electric fields due to synaptic currents sharpen excitatory transmission.

Sergiy Sylantyev, Leonid P Savtchenko, Yin-Ping Niu, Anton I Ivanov, Thomas P Jensen, Dimitri M Kullmann, Min-Yi Xiao, Dmitri A Rusakov
Author Information
  1. Sergiy Sylantyev: Institute of Neurology, University College London, Queen Square, London, WC1N 3BG, UK.

Abstract

The synaptic response waveform, which determines signal integration properties in the brain, depends on the spatiotemporal profile of neurotransmitter in the synaptic cleft. Here, we show that electrophoretic interactions between AMPA receptor-mediated excitatory currents and negatively charged glutamate molecules accelerate the clearance of glutamate from the synaptic cleft, speeding up synaptic responses. This phenomenon is reversed upon depolarization and diminished when intracleft electric fields are weakened through a decrease in the AMPA receptor density. In contrast, the kinetics of receptor-mediated currents evoked by direct application of glutamate are voltage-independent, as are synaptic currents mediated by the electrically neutral neurotransmitter GABA. Voltage-dependent temporal tuning of excitatory synaptic responses may thus contribute to signal integration in neural circuits.

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Grants

  1. 071179/Wellcome Trust
  2. G0400627(71256)/Medical Research Council
  3. G0600368/Medical Research Council
  4. G0600368(77987)/Medical Research Council
  5. G0400627/Medical Research Council
  6. G0400627(76527)/Medical Research Council
  7. G116/147/Medical Research Council

MeSH Term

Animals
Cells, Cultured
Dendrites
Diffusion
Dipeptides
Excitatory Postsynaptic Potentials
Glutamic Acid
Magnesium
Male
Monte Carlo Method
Patch-Clamp Techniques
Pyramidal Cells
Quinoxalines
Rats
Rats, Sprague-Dawley
Receptors, AMPA
Receptors, GABA
Synapses
gamma-Aminobutyric Acid

Chemicals

Dipeptides
Quinoxalines
Receptors, AMPA
Receptors, GABA
2,3-dioxo-6-nitro-7-sulfamoylbenzo(f)quinoxaline
gamma-glutamylglycine
Glutamic Acid
gamma-Aminobutyric Acid
Magnesium

Word Cloud

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