Microglia-derived purines modulate mossy fibre synaptic transmission and plasticity through P2X4 and A1 receptors

Jimmy George1,2,3, Rodrigo A Cunha2,3, Christophe Mulle1

  • 1Interdisciplinary Institute for Neuroscience, CNRS UMR 5297, University of Bordeaux, Bordeaux, France.

Insights

Microglia release purines that modulate brain synapses. This study shows microglia-derived ATP affects synaptic transmission and plasticity at hippocampal mossy fibre synapses via specific purine receptors.

Area of Science:

  • Neuroscience
  • Cell Biology
  • Synaptic Plasticity

Background:

  • Microglia, brain-resident immune cells, are recognized as synaptic partners modulating neuronal activity.
  • Purines released by microglia are key mediators of microglial-neuronal interactions.
  • Adenosine and ATP (P2 receptors) mediate purinergic signaling at brain synapses.

Purpose of the Study:

  • Investigate the impact of microglia-derived purines on synaptic transmission and plasticity.
  • Examine the role of microglia in modulating hippocampal mossy fibre (MF) synapses onto CA3 pyramidal neurons.
  • Determine the specific purine receptors involved in microglia-synapse communication.

Main Methods:

  • Utilized a mouse hippocampal slice model with immune-challenged microglia.
  • Assessed synaptic transmission and short-term plasticity at MF-CA3 synapses.
  • Investigated the effects of microglia-derived ATP and its conversion to adenosine.

Main Results:

  • Microglia-derived ATP differentially modulates synaptic transmission and plasticity at MF-CA3 synapses.
  • Presynaptic P2X4 receptors and adenosine A1 receptors are involved in this modulation.
  • P2X4 receptors are localized within the dentate gyrus-CA3 circuitry's mossy fibre tract.

Conclusions:

  • Microglia-derived purines significantly influence synaptic transmission and presynaptic plasticity at hippocampal MF-CA3 synapses.
  • This study reveals a novel interplay between microglia and MF-CA3 synapses.
  • Microglia are identified as potent regulators of synaptic plasticity in the hippocampus.

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