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Updated: Oct 4, 2025

Characterization of Immune Cell-derived Extracellular Vesicles and Studying Functional Impact on Cell Environment
Published on: June 2, 2020
CNS endothelial derived extracellular vesicles are biomarkers of active disease in multiple sclerosis
Michael Mazzucco1, William Mannheim2, Samantha V Shetty1
1The Brain and Mind Research Institute and the Department of Neurology, Weill Cornell Medical College, 1300 York Ave, New York, NY, 10065, USA.
Background:
Multiple sclerosis (MS) is a complex, heterogenous disease characterized by inflammation, demyelination, and blood-brain barrier (BBB) permeability. Currently, active disease is determined by physician confirmed relapse or detection of contrast enhancing lesions via MRI indicative of BBB permeability. However, clinical confirmation of active disease can be cumbersome. As such, disease monitoring in MS could benefit from identification of an easily accessible biomarker of active disease. We believe extracellular vesicles (EV) isolated from plasma are excellent candidates to fulfill this need. Because of the critical role BBB permeability plays in MS pathogenesis and identification of active disease, we sought to identify EV originating from central nervous system (CNS) endothelial as biomarkers of active MS. Because endothelial cells secrete more EV when stimulated or injured, we hypothesized that circulating concentrations of CNS endothelial derived EV will be increased in MS patients with active disease.
Methods:
To test this, we developed a novel method to identify EV originating from CNS endothelial cells isolated from patient plasma using flow cytometry. Endothelial derived EV were identified by the absence of lymphocyte or platelet markers CD3 and CD41, respectively, and positive expression of pan-endothelial markers CD31, CD105, or CD144. To determine if endothelial derived EV originated from CNS endothelial cells, EV expressing CD31, CD105, or CD144 were evaluated for expression of the myelin and lymphocyte protein MAL, a protein specifically expressed by CNS endothelial cells compared to endothelial cells of peripheral organs.
Results:
Quality control experiments indicate that EV detected using our flow cytometry method are 0.2 to 1 micron in size. Flow cytometry analysis of EV isolated from 20 healthy controls, 16 relapsing-remitting MS (RRMS) patients with active disease not receiving disease modifying therapy, 14 RRMS patients with stable disease not receiving disease modifying therapy, 17 relapsing-RRMS patients with stable disease receiving natalizumab, and 14 RRMS patients with stable disease receiving ocrelizumab revealed a significant increase in the plasma concentration of CNS endothelial derived EV in patients with active disease compared to all other groups (p = 0.001).
Conclusions:
For the first time, we have identified a method to identify CNS endothelial derived EV in circulation from human blood samples. Results from our pilot study indicate that increased levels of CNS endothelial derived EV may be a biomarker of BBB permeability and active disease in MS.
Insights
Central nervous system (CNS) endothelial extracellular vesicles (EV) show promise as a biomarker for active multiple sclerosis (MS). Increased levels of these CNS endothelial EVs in plasma may indicate blood-brain barrier permeability and active disease in MS patients.
Area of Science:
- Neuroscience
- Immunology
- Biomarker Discovery
Background:
- Multiple sclerosis (MS) is a complex neurological disease characterized by inflammation and blood-brain barrier (BBB) disruption.
- Current methods for diagnosing active MS, such as MRI, can be cumbersome.
- There is a need for accessible biomarkers to monitor MS disease activity.
Purpose of the Study:
- To identify extracellular vesicles (EVs) originating from central nervous system (CNS) endothelial cells as potential biomarkers of active MS.
- To investigate if circulating concentrations of CNS endothelial-derived EVs increase in MS patients with active disease.
Main Methods:
- Developed a novel flow cytometry method to isolate and identify CNS endothelial-derived EVs from plasma.
- EVs were characterized by the absence of lymphocyte/platelet markers and presence of pan-endothelial markers (CD31, CD105, or CD144).
- CNS origin was confirmed by the presence of the myelin and lymphocyte protein MAL.
Main Results:
- The flow cytometry method detected EVs sized 0.2 to 1 micron.
- Significantly increased plasma concentrations of CNS endothelial-derived EVs were observed in active MS patients compared to healthy controls and stable MS patients.
- This increase was observed regardless of disease-modifying therapy (natalizumab, ocrelizumab).
Conclusions:
- Successfully identified a method to detect CNS endothelial-derived EVs in human blood.
- Elevated levels of CNS endothelial-derived EVs may serve as a novel biomarker for BBB permeability and active MS.
- This finding could lead to improved monitoring of MS disease activity.

