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Measuring Progressive Neurological Disability in a Mouse Model of Multiple Sclerosis
Published on: November 14, 2016
Extracellular Vesicles Containing IL-4 Modulate Neuroinflammation in a Mouse Model of Multiple Sclerosis
Giacomo Casella1, Federico Colombo1, Annamaria Finardi1
1Clinical Neuroimmunology Unit, Department of Neuroscience, Institute of Experimental Neurology (InSpe), San Raffaele Scientific Institute, 20132 Milan, Italy.
Abstract:
Extracellular vesicles (EVs) play a major role in cell-to-cell communication in physiological and pathological conditions, and their manipulation may represent a promising therapeutic strategy. Microglia, the parenchymal mononuclear phagocytes of the brain, modulate neighboring cells also through the release of EVs. The production of custom EVs filled with desired molecules, possibly targeted to make their uptake cell specific, and their administration in biological fluids may represent a valid approach for drug delivery. We engineered a murine microglia cell line, BV-2, to release EVs overexpressing the endogenous "eat me" signal Lactadherin (Mfg-e8) on the surface to target phagocytes and containing the anti-inflammatory cytokine IL-4. A single injection of 107 IL-4+Mfg-e8+ EVs into the cisterna magna modulated established neuroinflammation and significantly reduced clinical signs in the mouse model of multiple sclerosis, experimental autoimmune encephalomyelitis (EAE). Injected IL-4+Mfg-e8+ EVs target mainly phagocytes (i.e., macrophages and microglia) surrounding liquoral spaces, and their cargo promote the upregulation of anti-inflammatory markers chitinase 3-like 3 (ym1) and arginase-1 (arg1), significantly reducing tissue damage. Engineered EVs may represent a biological drug delivery tool able to deliver multiple functional molecules simultaneously to treat neuroinflammatory diseases.
Insights
Engineered microglia extracellular vesicles (EVs) carrying IL-4 and targeting signals successfully treated neuroinflammation in a mouse model of multiple sclerosis. These EVs target phagocytes, reduce tissue damage, and show potential as a biological drug delivery tool.
Area of Science:
- Neuroscience
- Immunology
- Biotechnology
Background:
- Extracellular vesicles (EVs) are crucial for cell communication.
- Microglia release EVs that modulate brain cells.
- EV engineering offers therapeutic potential for neuroinflammatory diseases.
Purpose of the Study:
- To engineer microglia-derived EVs to deliver anti-inflammatory cargo (IL-4) and target phagocytes (via Lactadherin/Mfg-e8).
- To evaluate the therapeutic efficacy of these engineered EVs in a mouse model of multiple sclerosis (EAE).
Main Methods:
- Engineered murine microglia (BV-2) to overexpress Lactadherin (Mfg-e8) and load with IL-4.
- Administered engineered EVs (IL-4+Mfg-e8+) into the cisterna magna of EAE mice.
- Assessed EV targeting, modulation of neuroinflammation, and clinical signs.
Main Results:
- Injected EVs successfully targeted phagocytes (macrophages, microglia) near liquoral spaces.
- EVs upregulated anti-inflammatory markers (chitinase 3-like 3/ym1, arginase-1/arg1).
- Treatment significantly reduced clinical signs and tissue damage in EAE mice.
Conclusions:
- Engineered EVs can serve as a targeted biological drug delivery system.
- This approach effectively treats neuroinflammation and reduces tissue damage in a multiple sclerosis model.
- Simultaneous delivery of multiple functional molecules via engineered EVs is a promising strategy for neuroinflammatory diseases.
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