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Large-Scale Preparation of Synovial Fluid Mesenchymal Stem Cell-Derived Exosomes by 3D Bioreactor Culture
Published on: July 26, 2022
Mesenchymal stem cell-derived exosomes regulate microglia phenotypes: a promising treatment for acute central nervous
Yu-Yan Liu1, Yun Li1, Lu Wang1
1Medical School of Chinese PLA; Department of Critical Care Medicine, the First Medical Center, Chinese PLA General Hospital, Beijing, China.
Abstract:
There is growing evidence that long-term central nervous system (CNS) inflammation exacerbates secondary deterioration of brain structures and functions and is one of the major determinants of disease outcome and progression. In acute CNS injury, brain microglia are among the first cells to respond and play a critical role in neural repair and regeneration. However, microglial activation can also impede CNS repair and amplify tissue damage, and phenotypic transformation may be responsible for this dual role. Mesenchymal stem cell (MSC)-derived exosomes (Exos) are promising therapeutic agents for the treatment of acute CNS injuries due to their immunomodulatory and regenerative properties. MSC-Exos are nanoscale membrane vesicles that are actively released by cells and are used clinically as circulating biomarkers for disease diagnosis and prognosis. MSC-Exos can be neuroprotective in several acute CNS models, including for stroke and traumatic brain injury, showing great clinical potential. This review summarized the classification of acute CNS injury disorders and discussed the prominent role of microglial activation in acute CNS inflammation and the specific role of MSC-Exos in regulating pro-inflammatory microglia in neuroinflammatory repair following acute CNS injury. Finally, this review explored the potential mechanisms and factors associated with MSC-Exos in modulating the phenotypic balance of microglia, focusing on the interplay between CNS inflammation, the brain, and injury aspects, with an emphasis on potential strategies and therapeutic interventions for improving functional recovery from early CNS inflammation caused by acute CNS injury.
Insights
Mesenchymal stem cell-derived exosomes (MSC-Exos) show potential in treating acute central nervous system (CNS) injuries by modulating microglial activation. These exosomes may offer neuroprotection and improve functional recovery by balancing neuroinflammation.
Area of Science:
- Neuroscience
- Regenerative Medicine
- Immunology
Background:
- Central nervous system (CNS) inflammation is linked to secondary brain damage and disease progression.
- Microglia play a dual role in CNS injury, mediating both repair and damage through phenotypic changes.
- Acute CNS injuries, such as stroke and traumatic brain injury, involve complex inflammatory responses.
Purpose of the Study:
- To review acute CNS injury classifications and the role of microglial activation in neuroinflammation.
- To discuss the therapeutic potential of mesenchymal stem cell-derived exosomes (MSC-Exos) in modulating microglial responses.
- To explore mechanisms by which MSC-Exos influence microglial phenotype for improved CNS repair.
Main Methods:
- Literature review summarizing current research on CNS inflammation, microglial biology, and MSC-Exos.
- Analysis of studies investigating MSC-Exos' effects on pro-inflammatory and anti-inflammatory microglial phenotypes.
- Exploration of the interplay between CNS injury, inflammation, and exosome-mediated therapeutic strategies.
Main Results:
- MSC-Exos exhibit immunomodulatory and regenerative properties beneficial for acute CNS injuries.
- MSC-Exos demonstrate neuroprotective effects in models of stroke and traumatic brain injury.
- Evidence suggests MSC-Exos can regulate microglial activation, shifting towards a pro-repair phenotype.
Conclusions:
- MSC-Exos represent a promising cell-free therapeutic strategy for acute CNS injuries.
- Targeting microglial phenotype with MSC-Exos may mitigate neuroinflammation and enhance functional recovery.
- Further research into MSC-Exos' mechanisms can optimize their clinical application in CNS repair.
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