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Exploring New Inflammatory Biomarkers and Pathways during LPS-Induced M1 Polarization
Carolina Cunha1, Cátia Gomes1, Ana Rita Vaz2
1Research Institute for Medicines (iMed.ULisboa), Faculty of Pharmacy, Universidade de Lisboa, Lisbon, Portugal.
Abstract:
Identification of mediators triggering microglia activation and transference of noncoding microRNA (miRNA) into exosomes are critical to dissect the mechanisms underlying neurodegeneration. We used lipopolysaccharide- (LPS-) induced N9 microglia activation to explore new biomarkers/signaling pathways and to identify inflammatory miRNA (inflamma-miR) in cells and their derived exosomes. Upregulation of iNOS and MHC-II (M1-markers) and downregulation of arginase 1, FIZZ1 (M2-markers), and CX3CR1 (M0/M2 polarization) confirmed the switch of N9 LPS-treated cells into the M1 phenotype, as described for macrophages/microglia. Cells showed increased proliferation, activated TLR4/TLR2/NF-κB pathway, and enhanced phagocytosis, further corroborated by upregulated MFG-E8. We found NLRP3-inflammasome activation in these cells, probably accounting for the increased extracellular content of the cytokine HMGB1 and of the MMP-9 we have observed. We demonstrate for the first time that the inflamma-miR profiling (upregulated miR-155 and miR-146a plus downregulated miR-124) in M1 polarized N9 cells, noticed by others in activated macrophages/microglia, was replicated in their derived exosomes, likely regulating the inflammatory response of recipient cells and dissemination processes. Data show that LPS-treated N9 cells behave like M1 polarized microglia/macrophages, while providing new targets for drug discovery. In particular, the study yields novel insights into the exosomal circulating miRNA during neuroinflammation important for emerging therapeutic approaches targeting microglia activation.
Insights
Microglia activation involves specific microRNAs (miRNAs) transferred via exosomes, offering new therapeutic targets for neurodegeneration. This study identifies key inflammatory miRNAs in activated microglia and their exosomes, crucial for understanding neuroinflammation.
Area of Science:
- Neuroscience
- Immunology
- Molecular Biology
Background:
- Microglia activation is central to neurodegeneration.
- Understanding mediators and microRNA (miRNA) transfer in exosomes is crucial for dissecting neurodegenerative mechanisms.
Purpose of the Study:
- To investigate biomarkers and signaling pathways in lipopolysaccharide (LPS)-induced N9 microglia activation.
- To identify inflammatory miRNAs (inflamma-miRs) in activated microglia and their exosomes.
Main Methods:
- N9 microglia were activated using lipopolysaccharide (LPS).
- Phenotypic M1 polarization was confirmed by marker analysis (iNOS, MHC-II, arginase 1, FIZZ1, CX3CR1).
- Signaling pathways (TLR4/TLR2/NF-κB, NLRP3-inflammasome) and exosomal miRNA profiles were analyzed.
Main Results:
- LPS-induced N9 cells exhibited M1 polarization with upregulated iNOS, MHC-II, and MFG-E8, and downregulated arginase 1, FIZZ1, and CX3CR1.
- Activated pathways included TLR4/TLR2/NF-κB and NLRP3-inflammasome, leading to increased HMGB1 and MMP-9.
- Distinct inflamma-miR profiles (upregulated miR-155, miR-146a; downregulated miR-124) were observed in M1 microglia and their exosomes.
Conclusions:
- LPS-treated N9 microglia mimic M1 polarized microglia/macrophages, providing a model for neuroinflammation studies.
- Exosomal miRNAs play a role in regulating inflammatory responses and dissemination in neuroinflammation.
- Identified miRNAs and pathways represent potential therapeutic targets for neurodegenerative diseases.

