M2 Microglia-Derived Exosomes Protect Against Glutamate-Induced HT22 Cell Injury via Exosomal miR-124-3p

Lan Zhu1, Limei Ma1, Xin Du1

  • 1Department of Emergency and Critical Care Medicine, The Second Affiliated Hospital of Soochow University, 1055 Sanxiang Road, Suzhou, Jiangsu, 215004, People's Republic of China.

PubMed

Insights

M2 microglia-derived exosomes protect neurons from glutamate injury by delivering miR-124-3p, reducing apoptosis and oxidative stress. This offers a novel therapeutic strategy for sepsis-associated encephalopathy.

Area of Science:

  • Neuroscience
  • Cell Biology
  • Biochemistry

Background:

  • Sepsis-associated encephalopathy poses a significant clinical challenge with limited treatment options.
  • Exosomes show promise in treating neurological conditions like neurodegenerative diseases and stroke.
  • Understanding exosome mechanisms is crucial for developing new therapies for sepsis-associated encephalopathy.

Purpose of the Study:

  • To investigate the protective role of exosomes against glutamate-induced neuronal injury.
  • To elucidate the underlying molecular mechanisms of exosome-mediated neuroprotection.
  • To provide potential therapeutic avenues for sepsis-associated encephalopathy.

Main Methods:

  • Established a glutamate-induced neuronal damage model and performed metabolomic analysis.
  • Differentiated BV2 cells into M1 and M2 subtypes and collected exosomes.
  • Identified exosomes via transmission electron microscopy and specific markers.
  • Co-cultured exosomes with HT22 cells, assessing cell viability, apoptosis, mitochondrial membrane potential, and ROS levels.
  • Quantified miR-124-3p expression and verified its targets (ROCK1/ROCK2) using bioinformatics and luciferase assays.

Main Results:

  • Metabolomic analysis identified 81 differential metabolites, enriched in pathways like glutathione metabolism.
  • M2 microglia-derived exosomes significantly reduced glutamate-induced neuronal apoptosis, ROS accumulation, and restored mitochondrial function.
  • Exosomes from M2 microglia carrying miR-124-3p demonstrated neuroprotective effects comparable to miR-124-3p mimics.
  • MiR-124-3p delivered by M2 exosomes targets ROCK1/ROCK2, modulating the ROCK/PTEN/AKT/mTOR pathway.

Conclusions:

  • M2 microglia-derived exosomes protect neurons from glutamate-induced injury by transferring miR-124-3p.
  • The miR-124-3p/ROCK pathway is a key mechanism in exosome-mediated neuroprotection.
  • These findings suggest M2 exosomes as a potential therapeutic agent for sepsis-associated encephalopathy.

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