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Updated: Feb 15, 2026

Two-photon Imaging of Microglial Processes' Attraction Toward ATP or Serotonin in Acute Brain Slices
Published on: January 31, 2019
Effects of the ecto-ATPase apyrase on microglial ramification and surveillance reflect cell depolarization, not ATP
Christian Madry1,2, I Lorena Arancibia-Cárcamo3, Vasiliki Kyrargyri3
1Department of Neuroscience, Physiology and Pharmacology, University College London, London WC1E 6BT, United Kingdom; christian.madry@charite.de nicola.hamilton-whitaker@kcl.ac.uk d.attwell@ucl.ac.uk.
Abstract:
Microglia, the brain's innate immune cells, have highly motile processes which constantly survey the brain to detect infection, remove dying cells, and prune synapses during brain development. ATP released by tissue damage is known to attract microglial processes, but it is controversial whether an ambient level of ATP is needed to promote constant microglial surveillance in the normal brain. Applying the ATPase apyrase, an enzyme which hydrolyzes ATP and ADP, reduces microglial process ramification and surveillance, suggesting that ambient ATP/ADP maintains microglial surveillance. However, attempting to raise the level of ATP/ADP by blocking the endogenous ecto-ATPase (termed NTPDase1/CD39), which also hydrolyzes ATP/ADP, does not affect the cells' ramification or surveillance, nor their membrane currents, which respond to even small rises of extracellular [ATP] or [ADP] with the activation of K+ channels. This indicates a lack of detectable ambient ATP/ADP and ecto-ATPase activity, contradicting the results with apyrase. We resolve this contradiction by demonstrating that contamination of commercially available apyrase by a high K+ concentration reduces ramification and surveillance by depolarizing microglia. Exposure to the same K+ concentration (without apyrase added) reduced ramification and surveillance as with apyrase. Dialysis of apyrase to remove K+ retained its ATP-hydrolyzing activity but abolished the microglial depolarization and decrease of ramification produced by the undialyzed enzyme. Thus, applying apyrase affects microglia by an action independent of ATP, and no ambient purinergic signaling is required to maintain microglial ramification and surveillance. These results also have implications for hundreds of prior studies that employed apyrase to hydrolyze ATP/ADP.
Insights
Ambient ATP does not maintain microglial surveillance. Apyrase contamination, not ATP hydrolysis, reduces microglial process ramification and surveillance, challenging prior research assumptions.
Area of Science:
- Neuroscience
- Immunology
- Cell Biology
Background:
- Microglia, the brain's immune cells, possess motile processes for constant surveillance.
- The role of ambient adenosine triphosphate (ATP) in maintaining microglial surveillance is debated.
- Previous studies suggested ATP/ADP signaling influences microglial process dynamics.
Purpose of the Study:
- To investigate whether ambient ATP/ADP levels are necessary for microglial surveillance.
- To resolve contradictions in previous findings regarding apyrase's effect on microglia.
- To clarify the mechanisms by which apyrase affects microglial behavior.
Main Methods:
- Application of ATPase apyrase and inhibition of ecto-ATPase NTPDase1/CD39.
- Assessment of microglial process ramification and surveillance.
- Analysis of microglial membrane currents and cellular responses to extracellular ATP/ADP.
- Investigation of apyrase contamination, specifically high potassium (K+) concentration.
Main Results:
- Apyrase application reduced microglial ramification and surveillance, but this effect was linked to K+ contamination, not ATP hydrolysis.
- High K+ concentration depolarized microglia, leading to reduced ramification and surveillance, mimicking apyrase's effects.
- Dialysis of apyrase to remove K+ preserved ATP-hydrolyzing activity but abolished the observed effects on microglia.
- No evidence for ambient ATP/ADP maintaining microglial ramification or surveillance was found.
Conclusions:
- Apyrase affects microglia through a mechanism independent of ATP hydrolysis, primarily via potassium contamination.
- Ambient purinergic signaling is not required for maintaining microglial ramification and surveillance.
- Findings necessitate re-evaluation of hundreds of prior studies utilizing apyrase.
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