ArticleJOR spine2024
The proteomic landscape of extracellular vesicles derived from human intervertebral disc cells.
Article in JOR spine, 2024. The graph could read no effect estimate from its abstract, so it casts no vote on the map. Cited by 10 papers.
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Who cites it
10 citing papers in PubMed.
- Proteomic Atlas of Notochordal Cell-Derived Extracellular Vesicles Highlights EV-Specific NF-κB Modulation and Functional Implications of the Protein Corona.Journal of extracellular biology · 2026Article
- Article
- Evolving Landscape of Regenerative Therapies: Cell-Based and Cell-Free Approaches for Chronic Low Back Pain.Journal of clinical medicine · 2026Review
- Glycosylation of Extracellular Vesicles: Analytical and Translational Insights into Biomarker Discovery and Regenerative Medicine.International journal of molecular sciences · 2026Review
- Beyond miRNA Cargo Profiles: Anti-Inflammatory Roles of Extracellular Vesicle-Enriched miRNAs Derived From Human Intervertebral Disc Cells Unveiled by Functional Testing.Journal of extracellular biology · 2026Article
- Regenerative Potential of Extracellular Vesicles on Intervertebral Disc Degeneration: What is the EV-idence?JOR spine · 2025Review
- Article
- Proteomic profiling of small extracellular vesicles from bovine nucleus pulposus cells.PloS one · 2025Article
- The proteomic landscape of extracellular vesicles derived from human intervertebral disc cells.JOR spine · 2024Article
- Article
Corrections and comments
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Authors and funding
9 authors.
Funding
No grant is acknowledged in the PubMed record.
Abstract
Background: Extracellular vesicles (EVs) function as biomarkers and are crucial in cell communication and regulation, with therapeutic potential for intervertebral disc (IVD)-related low back pain (LBP). EV cargo is often affected by tissue health, which may affect the therapeutic potential. There is currently limited knowledge of how the cargo of IVD cell-derived EVs varies with tissue health and how differences in proteomic profile affect the predicted biological functions. Methods: Our study purified EVs from human IVD cell conditioned media by size-exclusion chromatography. Nanoparticle tracking analysis was conducted to measure EV size and concentration. Transmission electron microscopy and Western blot were performed to examine EV structure and markers. Tandem mass tag-mass spectrometry was conducted to determine protein cargo. Results: Most EVs were exosomes and intermediate microvesicles with an increasing amount linked to disease progression. Of the proteins detected, 88.6% were shared across the non-degenerate, mildly-degenerate, and degenerate samples. GO and KEGG analyses revealed that cargo from the mildly-degenerate samples was the most distinct, with the proteins in high abundance strongly associated with extracellular matrix (ECM) organization and structure. Shared proteins, highly expressed in the non-degenerate and degenerate samples, showed strong associations with cell adhesion, ECM-receptor interaction, and vesicle-mediated transport, respectively. Conclusions: Our findings indicate that EVs from IVD cells from tissue with different degrees of degeneration share a majority of the cargo proteins. However, the level of expression differs with degeneration grade. Cargo from the mildly-degenerate samples exhibits the most differences. A better understanding of changes in EV cargo in the degenerative process may provide novel information related to molecular mechanisms underlying IVD degeneration and suggest new potential treatment modalities for IVD-related LBP.
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