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Updated: Aug 17, 2026

Two-photon Imaging of Microglial Processes' Attraction Toward ATP or Serotonin in Acute Brain Slices
Published on: January 31, 2019
Astrocyte-derived ATP induces vesicle shedding and IL-1 beta release from microglia
Fabio Bianco1, Elena Pravettoni, Alessio Colombo
1Consiglio Nazionale delle Ricerche-Institute of Neuroscience, Cellular and Molecular Pharmacology and Department of Medical Pharmacology, University of Milan, Italy.
Abstract:
ATP has been indicated as a primary factor in microglial response to brain injury and inflammation. By acting on different purinergic receptors 2, ATP is known to induce chemotaxis and stimulate the release of several cytokines from these cells. The activation of purinergic receptors 2 in microglia can be triggered either by ATP deriving from dying cells, at sites of brain injury or by ATP released from astrocytes, in the absence of cell damage. By the use of a biochemical approach integrated with video microscopy experiments, we investigated the functional consequences triggered in microglia by ATP released from mechanically stimulated astrocytes, in mixed glial cocultures. Astrocyte-derived ATP induced in nearby microglia the formation and the shedding of membrane vesicles. Vesicle formation was inhibited by the ATP-degrading enzyme apyrase or by P2X(7)R antagonists. Isolation of shed vesicles, followed by IL-1beta evaluation by a specific ELISA revealed the presence of the cytokine inside the vesicular organelles and its subsequent efflux into the extracellular medium. IL-1beta efflux from shed vesicles was enhanced by ATP stimulation and inhibited by pretreatment with the P2X(7) antagonist oxidized ATP, thus indicating a crucial involvement of the pore-forming P2X(7)R in the release of the cytokine. Our data identify astrocyte-derived ATP as the endogenous factor responsible for microvesicle shedding in microglia and reveal the mechanisms by which astrocyte-derived ATP triggers IL-1beta release from these cells.
Insights
Astrocyte-derived adenosine triphosphate (ATP) triggers microglial cells to release interleukin-1 beta (IL-1 beta) via membrane vesicles. This process involves purinergic receptors 2 (P2X7R) and is crucial for brain inflammation responses.
Area of Science:
- Neuroscience
- Immunology
- Cell Biology
Background:
- Adenosine triphosphate (ATP) is a key mediator in microglial responses to brain injury and inflammation.
- ATP activates purinergic receptors 2 (P2R2) on microglia, inducing chemotaxis and cytokine release.
- Microglial P2R2 activation can occur from dying cells or ATP released by astrocytes.
Purpose of the Study:
- To investigate the effects of astrocyte-derived ATP on microglia.
- To elucidate the mechanisms of microvesicle shedding and IL-1 beta release from microglia induced by astrocyte ATP.
- To identify the role of purinergic receptors in this process.
Main Methods:
- Utilized a biochemical approach combined with video microscopy in mixed glial cocultures.
- Investigated the impact of mechanically stimulated astrocytes releasing ATP on nearby microglia.
- Employed apyrase, P2X7R antagonists, and ELISA for cytokine analysis.
Main Results:
- Astrocyte-derived ATP induced microglial formation and shedding of membrane vesicles.
- Vesicle formation was inhibited by apyrase and P2X7R antagonists.
- Interleukin-1 beta (IL-1 beta) was found within shed vesicles and released extracellularly, with release enhanced by ATP and inhibited by P2X7R antagonists.
Conclusions:
- Astrocyte-derived ATP is an endogenous factor driving microvesicle shedding in microglia.
- The pore-forming P2X7 receptor is critical for IL-1 beta release from these vesicles.
- This study reveals a novel mechanism for astrocyte-microglia communication in inflammatory conditions.
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