Microglial derived extracellular vesicles activate autophagy and mediate multi-target signaling to maintain cellular

Bram Van den Broek1, Isabel Pintelon2, Ibrahim Hamad1,3

  • 1Biomedical Research Institute UHasselt Hasselt University Hasselt Belgium.

Insights

Microglia-derived extracellular vesicles (M-EVs) promote autophagy and survival in microglia. This study shows M-EVs reduce neuroinflammation, suggesting a beneficial role in maintaining brain homeostasis.

Area of Science:

  • Neuroscience
  • Immunology
  • Cell Biology

Background:

  • Microglia are key immune cells in the central nervous system (CNS), crucial for homeostasis through phagocytosis and secretion of factors like extracellular vesicles (EVs).
  • Microglial-derived EVs (M-EVs) mediate intercellular communication, but their role in microglia homeostasis and influence on microglia subtypes remains unclear.
  • Limited knowledge exists on how M-EVs affect gene expression pathways related to inflammation and immunity in human microglia.

Purpose of the Study:

  • To investigate the effects of M-EVs on microglia homeostasis and gene expression.
  • To analyze the impact of M-EVs on autophagy and inflammatory pathways in microglia.
  • To explore microglia-microglia crosstalk via M-EVs in a monoculture system.

Main Methods:

  • M-EVs were produced in vitro from activated and non-activated microglia BV2 cells.
  • Internalization of M-EVs by mouse and human C20 microglia cells was assessed.
  • Autophagy markers (LC3B-II) and gene expression profiles (RNA sequencing) were analyzed in M-EVs-stimulated microglia.

Main Results:

  • M-EVs were internalized by microglia, inducing autophagic vesicles and increasing autophagic flux.
  • Microglia stimulation with M-EVs enhanced the protein expression of the autophagy marker LC3B-II.
  • Gene expression analysis revealed reduced expression of key genes in neuroinflammation, inflammasome, and apoptosis pathways.

Conclusions:

  • In vitro produced M-EVs can modulate autophagy, promoting microglia survival and homeostasis under cellular stress.
  • M-EVs exhibit beneficial activities by potentially reducing neuroinflammation through modulation of specific gene pathways.
  • Microglia-microglia crosstalk mediated by M-EVs plays a role in regulating brain inflammation.

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