Exosome-mediated delivery of kartogenin for chondrogenesis of synovial fluid-derived mesenchymal stem cells and cartilage regeneration

软骨发生 间充质干细胞 软骨 外体 移植 细胞生物学 再生(生物学) 骨关节炎 微泡 滑液 干细胞 化学 材料科学 生物医学工程 体内 体外 医学 生物 病理 解剖 生物化学 内科学 生物技术 小RNA 替代医学 基因
作者
Xiao Xu,Yujie Liang,Xingfu Li,Kan Ouyang,Manyi Wang,Tong Cao,Wen‐Cui Li,Jianquan Liu,Jianyi Xiong,Biquan Li,Jiang Xia,Daping Wang,Li Duan
出处
期刊:Biomaterials [Elsevier]
卷期号:269: 120539-120539 被引量:352
标识
DOI:10.1016/j.biomaterials.2020.120539
摘要

Transplantation of synovial fluid-derived mesenchymal stem cells (SF-MSCs) is a viable therapy for cartilage degeneration of osteoarthritis (OA). But controlling chondrogenic differentiation of the transplanted SF-MSCs in the joints remains a challenge. Kartogenin (KGN) is a small molecule that has been discovered to induce differentiation of SF-MSCs to chondrocytes both in vitro and in vivo. The clinical application of KGN however is limited by its low water solubility. KGN forms precipitates in the cell, resulting in low effective concentration and thus limiting its chondrogesis-promoting activity. Here we report that targeted delivery of KGN to SF-MSCs by engineered exosomes leads to even dispersion of KGN in the cytosol, increases its effective concentration in the cell, and strongly promotes the chondrogenesis of SF-MSCs in vitro and in vivo. Fusing an MSC-binding peptide E7 with the exosomal membrane protein Lamp 2b yields exosomes with E7 peptide displayed on the surface (E7-Exo) that has SF-MSC targeting capability. KGN delivered by E7-Exo efficiently enters SF-MSCs and induces higher degree of cartilage differentiation than KGN alone or KGN delivered by exosomes without E7. Co-administration of SF-MSCs with E7-Exo/KGN in the knee joints via intra-articular injection also shows more pronounced therapeutic effects in a rat OA model than KGN alone or KGN delivered by exosomes without E7. Altogether, transplantation of SF-MSCs with in situ chondrogenesis enabled by E7-Exo delivered KGN holds promise towards as an advanced stem cell therapy for OA.
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