ArticleMaterials today. Bio2023
Microencapsulated stem cells reduce cartilage damage in a material dependent manner following minimally invasive intra-articular injection in an OA rat model.
Article in Materials today. Bio, 2023. The graph could read no effect estimate from its abstract, so it casts no vote on the map. Cited by 6 papers.
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Who cites it
6 citing papers in PubMed.
- Cryogel-based therapeutic platforms for disease modification in osteoarthritis.npj biomedical innovations · 2026Review
- Defective alveolar regeneration in emphysema: identifying dysfunctional cellular crosstalk and novel therapeutic opportunities for tissue repair.European respiratory review : an official journal of the European Respiratory Society · 2026Review
- ECM-binding properties of extracellular vesicles: advanced delivery strategies for therapeutic applications in bone and joint diseases.Cell communication and signaling : CCS · 2025Review
- Mesenchymal stem cells for osteoarthritis: Recent advances in related cell therapy.Bioengineering & translational medicine · 2025Review
- The Interaction Between Microbiota and Stem Cells on Progression of Osteoarthritis and Engineered Stem Cell for Enhancing Osteoarthritis Treatment.International journal of nanomedicine · 2025Review
- Pain Management Strategies in Osteoarthritis.Biomedicines · 2024Review
Corrections and comments
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Authors and funding
13 authors.
Funding
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Abstract
Osteoarthritis (OA) is a degenerative disease of the joints for which no curative treatment exists. Intra-articular injection of stem cells is explored as a regenerative approach, but rapid clearance of cells from the injection site limits the therapeutic outcome. Microencapsulation of mesenchymal stem cells (MSCs) can extend the retention time of MSCs, but the outcomes of the few studies currently performed are conflicting. We hypothesize that the composition of the micromaterial's shell plays a deciding factor in the treatment outcome of intra-articular MSC injection. To this end, we microencapsulate MSCs using droplet microfluidic generators in flow-focus mode using various polymers and polymer concentrations. We demonstrate that polymer composition and concentration potently alter the metabolic activity as well as the secretome of MSCs. Moreover, while microencapsulation consistently prolongs the retention time of MSC injected in rat joints, distinct biodistribution within the joint is demonstrated for the various microgel formulations. Furthermore, intra-articular injections of pristine and microencapsulated MSC in OA rat joints show a strong material-dependent effect on the reduction of cartilage degradation and matrix loss. Collectively, this study highlights that micromaterial composition and concentration are key deciding factors for the therapeutic outcome of intra-articular injections of microencapsulated stem cells to treat degenerative joint diseases.
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