Extracellular acidosis impairs P2Y receptor-mediated Ca(2+) signalling and migration of microglia

Antonia Langfelder1, Emeka Okonji1, Diana Deca1

  • 1Department of Physiology, Anatomy and Genetics, University of Oxford, Parks Road, Oxford OX1 3PT, UK.

Cell Calcium
|January 28, 2015
PubMed

Insights

Brain acidosis inhibits microglial cell calcium influx and migration by interfering with purinergic (P2Y) receptor signaling. This finding reveals how acidic environments in brain pathologies alter microglial function and responsiveness.

Area of Science:

  • Neuroscience
  • Immunology
  • Cell Biology

Background:

  • Microglia are crucial brain immune cells responding to disease.
  • Brain pathologies often involve interstitial fluid acidosis, exposing microglia to acidic environments.
  • The impact of extracellular acidosis on microglial function remains poorly understood.

Purpose of the Study:

  • To investigate how extracellular acidosis affects microglial function, specifically P2Y receptor-mediated signaling and cellular responses.
  • To elucidate the mechanisms by which acidosis influences calcium (Ca2+) signaling and cell migration in microglia.

Main Methods:

  • Utilized pharmacological tools and fluorescence imaging on the murine microglial cell line C8B4.
  • Examined the effects of extracellular acidosis on P2Y receptor-mediated Ca2+ signaling, including Ca2+ release and influx.
  • Assessed the impact of acidosis on microglial migration stimulated by P2Y receptors.

Main Results:

  • Extracellular acidosis significantly inhibits Ca2+ influx into microglia, while Ca2+ release from stores remains largely unaffected.
  • Acidosis profoundly impairs store-operated Ca2+ channels, a key pathway for Ca2+ influx.
  • P2Y1 and P2Y6 receptor-mediated microglial migration is inhibited under acidic conditions, but basal migration is not.

Conclusions:

  • Extracellular acidosis disrupts P2Y receptor-mediated Ca2+ signaling in microglia, primarily by inhibiting Ca2+ influx.
  • This disruption alters microglial responses and their ability to react to extracellular signals in acidic conditions.
  • The findings suggest that altered microglial behavior in pathological conditions may be partly due to the acidic microenvironment.