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Updated: Mar 21, 2026

Author Spotlight: In Vitro Co-Culture Model for Studying Microglia-Neuronal Interactions in Disease Conditions
Published on: July 26, 2024
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.
Abstract:
Recent data have provided evidence that microglia, the brain-resident macrophage-like cells, modulate neuronal activity in both physiological and pathophysiological conditions, and microglia are therefore now recognized as synaptic partners. Among different neuromodulators, purines, which are produced and released by microglia, have emerged as promising candidates to mediate interactions between microglia and synapses. The cellular effects of purines are mediated through a large family of receptors for adenosine and for ATP (P2 receptors). These receptors are present at brain synapses, but it is unknown whether they can respond to microglia-derived purines to modulate synaptic transmission and plasticity. Here, we used a simple model of adding immune-challenged microglia to mouse hippocampal slices to investigate their impact on synaptic transmission and plasticity at hippocampal mossy fibre (MF) synapses onto CA3 pyramidal neurons. MF-CA3 synapses show prominent forms of presynaptic plasticity that are involved in the encoding and retrieval of memory. We demonstrate that microglia-derived ATP differentially modulates synaptic transmission and short-term plasticity at MF-CA3 synapses by acting, respectively, on presynaptic P2X4 receptors and on adenosine A1 receptors after conversion of extracellular ATP to adenosine. We also report that P2X4 receptors are densely located in the mossy fibre tract in the dentate gyrus-CA3 circuitry. In conclusion, this study reveals an interplay between microglia-derived purines and MF-CA3 synapses, and highlights microglia as potent modulators of presynaptic plasticity.
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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