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Published on: August 15, 2012
M2 Microglia-Derived Exosomes Protect Against Glutamate-Induced HT22 Cell Injury via Exosomal miR-124-3p
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.
Abstract:
As one of the most serious complications of sepsis, sepsis-associated encephalopathy has not been effectively treated or prevented. Exosomes, as a new therapeutic method, play a protective role in neurodegenerative diseases, stroke and traumatic brain injury in recent years. The purpose of this study was to investigate the role of exosomes in glutamate (Glu)-induced neuronal injury, and to explore its mechanism, providing new ideas for the treatment of sepsis-associated encephalopathy. The neuron damage model induced by Glu was established, and its metabolomics was analyzed and identified. BV2 cells were induced to differentiate into M1 and M2 subtypes. After the exosomes from both M1-BV2 cells and M2-BV2 cells were collected, exosome morphological identification was performed by transmission electron microscopy and exosome-specific markers were also detected. These exosomes were then cocultured with HT22 cells. CCK-8 method and LDH kit were used to detect cell viability and toxicity. Cell apoptosis, mitochondrial membrane potential and ROS content were respectively detected by flow cytometry, JC-1 assay and DCFH-DA assay. MiR-124-3p expression level was detected by qRT-PCR and Western blot. Bioinformatics analysis and luciferase reporter assay predicted and verified the relationship between miR-124-3p and ROCK1 or ROCK2. Through metabolomics, 81 different metabolites were found, including fructose, GABA, 2, 4-diaminobutyric acid, etc. The enrichment analysis of differential metabolites showed that they were mainly enriched in glutathione metabolism, glycine and serine metabolism, and urea cycle. M2 microglia-derived exosomes could reduce the apoptosis, decrease the accumulation of ROS, restore the mitochondrial membrane potential and the anti-oxidative stress ability in HT22 cells induced by Glu. It was also found that the protective effect of miR-124-3p mimic on neurons was comparable to that of M2-EXOs. Additionally, M2-EXOs might carry miR-124-3p to target ROCK1 and ROCK2 in neurons, affecting ROCK/PTEN/AKT/mTOR signaling pathway, and then reducing Glu-induced neuronal apoptosis. M2 microglia-derived exosomes may protect HT22 cells against Glu-induced injury by transferring miR-124-3p into HT22 cells, with ROCK being a target gene for miR-124-3p.
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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