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Lipidomic Signatures in Microglial Extracellular Vesicles During Acute Inflammation: A Gateway to Neurological
Nikita Ollen-Bittle1, Wenxuan Wang1, Kimberly Molina Bean2,3
1Department of Anatomy and Cell Biology, Schulich School of Medicine and Dentistry, Western University, London, Ontario, Canada.
Abstract:
Extracellular vesicles (EVs) are membrane-bound vesicles released from all cells throughout the body, including the central nervous system, and are known to carry both membrane-bound proteins and cargo reflective of their cell of origin. EVs show promise as neurological disease biomarkers due to their molecular makeup reflecting their parent-cell composition signature and due to their ability to cross the blood-brain barrier. To date, the vast majority of research in this field has explored the protein profiles of EVs; however, lipids play an important role not only in the formation of EVs, but also in mediating cellular function and the pathological progression of many neurodegenerative conditions. Herein, we take a critical first step in determining the potential utility of EV lipids as biomarkers in neurological disease. In vitro we exposed BV-2 microglia to either control media or media containing lipopolysaccharides (LPS), a known pro-inflammatory stimulus, for 24 h then isolated both the cells and their EVs and performed LC-MS/MS. For the first time, we reveal distinct lipidomic changes can differentiate resting versus pro-inflammatory microglia and their EVs, while distinct lipids are preserved between EVs and their parent cell. Moreover, we add to current literature by demonstrating acute pro-inflammatory activation of microglia results in the activation and suppression of distinct lipidomic pathways. Finally, we demonstrate that analysis of lipid-based relationships between parent cells and their EVs may be a useful tool to infer cellular function. This study is the first of its kind to demonstrate that lipidomic analysis can not only differentiate the functional state of cells in vitro but can also differentiate their EVs. We lay the first brick in a foundation to support future research into EV lipids as novel and exciting biomarker candidates in neurological disease.
Insights
Lipid analysis of extracellular vesicles (EVs) can distinguish between resting and activated microglia, offering potential for novel neurological disease biomarkers. This study reveals distinct lipid profiles in EVs and parent cells, aiding in understanding cellular function and disease states.
Area of Science:
- Neuroscience
- Biochemistry
- Cell Biology
Background:
- Extracellular vesicles (EVs) carry molecular cargo reflecting their cell of origin and can cross the blood-brain barrier.
- EVs are promising biomarkers for neurological diseases, but research has largely focused on proteins, overlooking the role of lipids.
- Lipids are crucial for EV formation, cellular function, and the progression of neurodegenerative diseases.
Purpose of the Study:
- To investigate the potential of extracellular vesicle (EV) lipids as biomarkers for neurological diseases.
- To determine if lipidomic analysis can differentiate the functional states of microglia and their EVs.
- To explore the relationship between parent cell and EV lipid profiles to infer cellular function.
Main Methods:
- BV-2 microglia cells were exposed to lipopolysaccharides (LPS) to induce a pro-inflammatory state.
- Cells and their released EVs were isolated after 24 hours of stimulation.
- Liquid chromatography-tandem mass spectrometry (LC-MS/MS) was used for lipidomic analysis.
Main Results:
- Distinct lipidomic changes were identified that differentiate resting from pro-inflammatory microglia and their EVs.
- Specific lipids were found to be preserved between parent cells and their EVs, while others differed.
- Acute pro-inflammatory activation of microglia led to the activation and suppression of distinct lipidomic pathways.
Conclusions:
- Lipidomic analysis can differentiate the functional state of both microglia and their EVs in vitro.
- The lipid profiles of parent cells and their EVs provide insights into cellular function.
- This study establishes a foundation for exploring EV lipids as novel biomarkers for neurological diseases.
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