Compensatory engulfment and Müller glia reactivity in the absence of microglia

Whitney A Thiel1, Zachary I Blume1, Diana M Mitchell1

  • 1Department of Biological Sciences, University of Idaho, Moscow, Idaho, USA.

Glia
|April 22, 2022
PubMed

Insights

In zebrafish retinas, microglia primarily clear dying cells, but Müller glia can compensate when microglia are absent. This Müller glial phagocytosis increases their reactivity but not cell division.

Area of Science:

  • Neuroscience
  • Retinal Biology
  • Glial Cell Function

Background:

  • Microglia are recognized for their phagocytic roles in the vertebrate retina.
  • Müller glia possess phagocytic capabilities, but their function and context require further investigation.
  • Understanding glial cell phagocytosis is crucial for retinal health and disease.

Purpose of the Study:

  • To investigate Müller glial phagocytosis of dying cells in developing zebrafish retinas.
  • To compare Müller glial phagocytic activity in the presence and absence of microglia.
  • To assess the consequences of increased phagocytic load on Müller glia.

Main Methods:

  • Utilized a zebrafish genetic mutant lacking microglia development.
  • Examined dying cell clearance by Müller glia in normal and microglial-deficient retinas.
  • Assessed cellular compartments, phagosome markers (Rab5), lysosomal staining, and Müller glial reactivity (gfap upregulation).

Main Results:

  • Microglia dominate dying cell clearance in normal retinas; Müller glia have a limited role.
  • In microglial absence, Müller glia significantly increase phagocytic activity, engulfing apoptotic cells.
  • Increased engulfment load in Müller glia leads to reactivity (gfap upregulation) but not cell cycle re-entry.

Conclusions:

  • Müller glia exhibit compensatory phagocytic capacity in the absence of microglia.
  • Microglial deficiency impacts other glial cells, necessitating consideration in research and therapeutics.
  • Further research is needed to elucidate differential glial phagocytosis mechanisms in the CNS.