Characterization of exosome-mediated propagation of systemic inflammatory responses into the Central Nervous System
Mahesh Chandra Kodali1, Chinnu Salim2, Saifudeen Ismael3
1Massachusetts General Hospital.
Abstract:
The mechanisms through which systemic inflammation exerts its effect on the CNS are still not completely understood. Exosomes are small (30 to 100 nanometers) membrane-bound extracellular vesicles released by most of the mammalian cells. Exosomes play a vital role in cell-to-cell communication. This includes regulation of inflammatory responses by shuttling mRNAs, miRNAs, and cytokines both locally and systemically to the neighboring as well as distant cells to further modulate their transcriptional and/or translational states and affect the functional phenotype of those cells that have taken up these exosomes. The role of circulating blood exosomes leading to neuroinflammation during systemic inflammatory conditions was further characterized. Serum-derived exosomes from LPS-challenged mice (SDEL) were freshly isolated from the sera of the mice that were earlier treated with LPS and used to study SDEL effects on neuroinflammation. Exosomes isolated from the sera of the mice injected with saline were used as a control. In-vitro studies showed that the SDEL upregulate pro-inflammatory cytokine gene expression in the murine cell lines of microglia (BV-2), astrocytes (C8-D1A), and cerebral microvascular endothelial cells (bEnd.3). To further study their effects in-vivo, SDEL were intravenously injected into normal adult mice. Elevated mRNA expression of pro-inflammatory cytokines was observed in the brains of SDEL recipient mice. Proteomic analysis of the SDEL confirmed the increased expression of inflammatory cytokines in them. Together, these results further demonstrate and strengthen the novel role of peripheral circulating exosomes in causing neuroinflammation during systemic inflammatory conditions.
Insights
Systemic inflammation affects the brain via exosomes. Serum-derived exosomes from lipopolysaccharide (LPS)-challenged mice induced neuroinflammation in recipient mice, highlighting exosomes
Area of Science:
- Neuroscience
- Immunology
- Cell Biology
Background:
- Mechanisms linking systemic inflammation to the central nervous system (CNS) remain unclear.
- Exosomes, small extracellular vesicles, mediate cell-to-cell communication, including inflammatory responses.
- Circulating exosomes may play a role in neuroinflammation during systemic inflammatory conditions.
Purpose of the Study:
- To investigate the role of serum-derived exosomes in mediating neuroinflammation.
- To characterize the effects of exosomes from lipopolysaccharide (LPS)-challenged mice on neuroinflammation.
Main Methods:
- Isolation of serum-derived exosomes from LPS-challenged mice (SDEL) and control mice.
- In vitro studies using murine microglia (BV-2), astrocytes (C8-D1A), and brain endothelial cells (bEnd.3).
- In vivo studies involving intravenous injection of SDEL into normal adult mice.
- Analysis of pro-inflammatory cytokine gene expression and proteomic analysis of exosomes.
Main Results:
- SDEL upregulated pro-inflammatory cytokine gene expression in vitro in microglia, astrocytes, and endothelial cells.
- Intravenous injection of SDEL led to elevated pro-inflammatory cytokine mRNA expression in the brains of recipient mice.
- Proteomic analysis confirmed increased inflammatory cytokines within SDEL.
Conclusions:
- Peripheral circulating exosomes contribute to neuroinflammation during systemic inflammatory conditions.
- SDEL possess pro-inflammatory properties that can induce neuroinflammation both in vitro and in vivo.
- These findings elucidate a novel pathway for systemic inflammation impacting the CNS via exosomes.
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