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Updated: Jun 19, 2025

Labeling of Extracellular Vesicles for Monitoring Migration and Uptake in Cartilage Explants
Published on: October 4, 2021
Molecular Determinants of Neutrophil Extracellular Vesicles That Drive Cartilage Regeneration in Inflammatory
Bethan L Thomas1, Trinidad Montero-Melendez1, Silvia Oggero2
1Queen Mary University of London, London, United Kingdom.
Objective:
This study was undertaken to establish the potential therapeutic profile of neutrophil-derived extracellular vesicles (EVs) in experimental inflammatory arthritis and associate pharmacological activity with specific EV components, focusing on microRNAs.
Methods:
Neutrophil EVs were administered intra-articularly through a prophylactic or therapeutic protocol to male C57BL/6 mice undergoing serum-transfer-induced inflammatory arthritis. Transcriptomic analysis of knees was performed on joints following EV administration, naive and arthritic mice (untreated; n = 4/group) and EV-treated diseased mice (intra-articular administration) with contralateral (vehicle-treated; n = 8/group). Comparison of healthy donor and patients with rheumatoid arthritis (RA) neutrophil EVs was performed.
Results:
EVs afforded cartilage protection with an increase in collagen-II and reduced collagen-X expression within the joint. To gain mechanistic insights, RNA sequencing of the arthritic joints was conducted. A total of 5,231 genes were differentially expressed (P < 0.05), with 257 unique to EV treatment. EVs affected key regenerative pathways involved in joint development, including Wnt and Notch signaling. This wealth of genomic alteration prompted to identify microRNAs in EVs, 10 of which are associated with RA. As a proof of concept, we focused on miR-455-3p, which was detected in both healthy donor and RA EVs. EV addition to chondrocyte cultures elevated miR-455-3p and exerted anticatabolic effects upon interleukin-1β stimulation; these effects were blocked by actinomycin or miR-455-3p antagomir.
Conclusion:
Neutrophils from patients with RA yielded EVs with composition, efficacy, and miR-455-3p content similar to those of healthy volunteers, suggesting that neutrophil EVs could be developed as an autologous treatment to protect and repair joint tissue of patients affected by inflammatory arthritides.
Insights
Neutrophil extracellular vesicles (EVs) show therapeutic potential for inflammatory arthritis, protecting cartilage and promoting joint repair. EVs from rheumatoid arthritis patients are similar to healthy donors, suggesting autologous treatment possibilities.
Area of Science:
- Immunology
- Extracellular Vesicles
- Rheumatology
Background:
- Inflammatory arthritis poses a significant burden on joint health.
- Neutrophils are key players in inflammation and joint damage.
- Extracellular vesicles (EVs) are emerging as potential therapeutic agents.
Purpose of the Study:
- To investigate the therapeutic potential of neutrophil-derived EVs in experimental inflammatory arthritis.
- To identify specific EV components, particularly microRNAs, responsible for pharmacological activity.
- To compare EVs from healthy donors and patients with rheumatoid arthritis (RA).
Main Methods:
- Intra-articular administration of neutrophil EVs in a mouse model of inflammatory arthritis.
- Transcriptomic analysis of arthritic knee joints.
- RNA sequencing to identify differentially expressed genes and microRNAs.
- In vitro studies using chondrocyte cultures to assess the effect of miR-455-3p.
Main Results:
- Neutrophil EVs demonstrated cartilage protection, increasing collagen-II and reducing collagen-X expression.
- EV treatment modulated key regenerative pathways, including Wnt and Notch signaling.
- Ten microRNAs within EVs were associated with RA, with miR-455-3p showing anticatabolic effects in chondrocytes.
Conclusions:
- Neutrophil EVs possess therapeutic potential for inflammatory arthritis, offering cartilage protection and promoting joint repair.
- EVs derived from RA patients exhibit similar composition and efficacy to those from healthy donors.
- Neutrophil EVs could be developed as an autologous treatment for inflammatory arthritides.
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