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Published on: July 26, 2022
Mesenchymal stem cell-derived miR-125b-1-3p-abundant exosomes alleviate osteoarthritis by modulating the
Xiaoming Liu1,2, Jun Zhou3, Bin Chai4
1Laboratory of Key Technology and Materials in Minimally Invasive Spine Surgery, Department of Orthopedics, Tongren Hospital, Shanghai Jiao Tong University School of Medicine, 1111 XianXia Road, Shanghai, 200336, China.
Background:
Osteoarthritis (OA) is a prevalent degenerative joint disorder characterized by the gradual deterioration of articular cartilage and the presence of inflammatory responses. In recent years, the use of exosomes (Exos) derived from bone marrow-derived mesenchymal stem cells (BMSCs) has emerged as a promising novel therapeutic approach for OA because of the role of these cells in tissue repair and immunomodulation. This study aimed to elucidate the functions and molecular mechanisms of miR-125b-1-3p, which is enriched in BMSC-Exos, in the progression of OA.
Methods:
An in vitro OA model was constructed by exposing chondrocytes to IL-1β, followed by treatment with BMSC-Exos, to evaluate their protective effects. miRNA sequencing was performed to analyse the miRNA expression profile in BMSC-Exos, identifying miR-125b-1-3p as a pivotal molecule. Dual-luciferase reporter assays and chromatin immunoprecipitation quantitative PCR (ChIP‒qPCR) were used to further validate the target genes of miR-125b-1-3p and its downstream regulatory network. Additionally, a rat OA model was constructed, and the therapeutic effects of miR-125b-1-3p in BMSC-Exos were verified in vivo through safranin O staining, HE staining, and immunohistochemical analysis.
Results:
MicroRNA (miRNA) sequencing revealed that compared with its expression in untreated normal chondrocytes, the expression of miR-125b-1-3p was significantly enriched in BMSC-Exos but downregulated in IL-1β-induced OA chondrocytes. Functional experiments demonstrated that BMSC-Exos delivered miR-125b-1-3p, which markedly enhanced chondrocyte anabolism and migration while inhibiting apoptosis, thereby alleviating OA progression. Mechanistic studies revealed that miR-125b-1-3p targeted the histone demethylase KDM6B, resulting in increased H3K27me3 enrichment at the FOXM1 promoter region and epigenetic suppression of FOXM1 expression, ultimately exerting chondroprotective effects.
Conclusion:
This study elucidates a novel molecular mechanism through which BMSC-Exos shuttle miR-125b-1-3p to alleviate OA by modulating the KDM6B/H3K27me3/FOXM1 signalling axis. These findings provide a theoretical rationale and identify promising therapeutic targets for the development of exosome-based therapeutic strategies against OA.
Insights
Bone marrow-derived mesenchymal stem cell exosomes (BMSC-Exos) deliver miR-125b-1-3p to treat osteoarthritis (OA). This microRNA alleviates OA by targeting KDM6B, reducing FOXM1 expression, and protecting cartilage.
Area of Science:
- Biomedical research
- Regenerative medicine
- Molecular biology
Background:
- Osteoarthritis (OA) is a degenerative joint disease impacting cartilage and causing inflammation.
- Bone marrow-derived mesenchymal stem cell exosomes (BMSC-Exos) show therapeutic potential for OA due to their regenerative and immunomodulatory properties.
Purpose of the Study:
- To investigate the role and molecular mechanisms of miR-125b-1-3p, abundant in BMSC-Exos, in osteoarthritis progression.
- To evaluate the therapeutic efficacy of BMSC-Exos carrying miR-125b-1-3p in preclinical OA models.
Main Methods:
- Constructed in vitro and in vivo osteoarthritis models using IL-1β stimulation and rat models, respectively.
- Utilized miRNA sequencing to identify miR-125b-1-3p in BMSC-Exos and dual-luciferase reporter assays and ChIP-qPCR to elucidate its regulatory network.
- Assessed therapeutic effects via safranin O staining, HE staining, and immunohistochemical analysis.
Main Results:
- miR-125b-1-3p was enriched in BMSC-Exos and downregulated in OA chondrocytes.
- BMSC-Exos carrying miR-125b-1-3p promoted chondrocyte anabolism and migration while inhibiting apoptosis, thereby alleviating OA.
- miR-125b-1-3p targeted KDM6B, leading to increased H3K27me3 at the FOXM1 promoter and epigenetic suppression of FOXM1, ultimately protecting chondrocytes.
Conclusions:
- BMSC-Exos deliver miR-125b-1-3p to mitigate OA by regulating the KDM6B/H3K27me3/FOXM1 signaling pathway.
- These findings offer a mechanistic understanding and potential therapeutic targets for exosome-based OA treatments.
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