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.

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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