High-parameter cytometry unmasks microglial cell spatio-temporal response kinetics in severe neuroinflammatory

Alanna G Spiteri1,2, Rachel L Terry1,2,3,4, Claire L Wishart1,2

  • 1Discipline of Pathology, Faculty of Medicine and Health, School of Medical Sciences, The University of Sydney, Sydney, Australia.

Abstract

Insights

Researchers developed a novel method to distinguish between brain-resident microglia and infiltrating myeloid cells during neuroinflammation. This technique aids in understanding cell roles in diseases like West Nile virus encephalitis.

Area of Science:

  • Neuroimmunology
  • Cellular Biology
  • Virology

Background:

  • Distinguishing resident microglia from infiltrating myeloid cells in neuroinflammation is challenging due to phenotype mimicry.
  • Understanding these cell populations is crucial for neuroinflammatory disease pathogenesis and therapeutic interventions.
  • West Nile virus (WNV) encephalitis involves significant myeloid cell infiltration, but microglia's role remains unclear.

Purpose of the Study:

  • To develop a novel gating strategy for differentiating microglia and infiltrating myeloid cells in the context of neuroinflammation.
  • To kinetically analyze the roles and phenotypic changes of these myeloid populations during West Nile virus (WNV) encephalitis.

Main Methods:

  • High-parameter cytometry and dimensionality reduction were employed to create a novel gating strategy.
  • The strategy was validated by blocking myeloid cell entry, adoptive transfer of monocytes, and intravenous labeling of infiltrating leukocytes.
  • PLX5622 depletion was used to assess the impact on microglial subsets.

Main Results:

  • Four distinct microglia subsets were identified in homeostatic and WNV-infected brains.
  • Two infiltrating myeloid populations, 'inflammatory' and 'microglia-like' macrophages, were identified.
  • Microglia subsets (P2RY12lo) increased during infection, while P2RY12hi CD86- subsets proliferated; microglia underwent phenotypic changes, apoptosis, and expressed IL-12.
  • Infiltrating macrophages expressed TMEM119 and P2RY12 de novo, with microglia-like macrophages showing higher death rates.

Conclusions:

  • The developed approach allows for detailed kinetic analysis of resident versus infiltrating myeloid cells in neuroinflammatory models without artificial manipulation.
  • This method provides a clearer understanding for developing targeted therapeutic strategies modulating specific myeloid cell populations in neuroinflammation.

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