骨间充质干细胞衍生的外泌体通过贻贝激发的多功能水凝胶与淫羊藿苷共同递送和协同作用,以保护软骨

IF 10.7 1区 医学 Q1 PHARMACOLOGY & PHARMACY Asian Journal of Pharmaceutical Sciences Pub Date : 2023-05-01 DOI:10.1016/j.ajps.2023.100799
Jia Zeng , Peng Sun , Yuanqian Zhao , Xinning Fang , Zhenghong Wu , Xiaole Qi
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引用次数: 3

摘要

间充质干细胞(MSC)由于其对组织和器官的免疫调节、抗炎和再生修复功能,在促进软骨再生方面特别有效。同时,关节内给药以及与其他治疗药物的协同作用是推动其进一步应用的关键问题。我们报道了一种受贻贝启发的多功能水凝胶系统,该系统可以实现MSC衍生的外泌体(Exos)与icariin(ICA)的共递送和协同作用。ICA和Exos联合递送的关节腔注射系统有望保留在关节腔中,并促进软骨再生,这是由于受贻贝启发的多功能水凝胶具有热敏、自修复和粘附特性。实验结果表明,Exos使细胞对ICA的吸收均匀增加2倍以上,Exos与ICA的协同作用有效地促进了细胞的增殖和迁移。协同处理后,上清液和细胞内基质金属蛋白酶13的含量分别下降47%和59%。在体内研究中,ICA负载的Exos通过多功能水凝胶递送表现出延长的保留行为,从而表现出增强的软骨保护。在骨关节炎模型中,共递送水凝胶系统缓解了软骨衰退,确保了适当的软骨厚度。
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Bone mesenchymal stem cell-derived exosomes involved co-delivery and synergism effect with icariin via mussel-inspired multifunctional hydrogel for cartilage protection

Mesenchymal stem cells (MSC) are particularly effective in promoting cartilage regeneration due to their immunomodulatory, anti-inflammatory and regenerative repair functions of tissues and organs. Meanwhile, the intra-articular delivery and synergy with other therapeutic drugs have been the key issues driving their further application. We report a mussel-inspired multifunctional hydrogel system, which could achieve co-delivery and synergism effect of MSC-derived exosomes (Exos) with icariin (ICA). The ICA and Exos co-delivered articular cavity injection system are expected to retain in the joint cavity and promote cartilage regeneration, due to the thermosensitive, self-healing and adhesion properties of the mussel-inspired multifunctional hydrogel. The experimental results proved that Exos enhanced the cellular uptake of ICA by more than 2-fold evenly, and the synergism of Exos and ICA efficiently improve the cell proliferation and migration. After synergic treatment, the content of matrix metalloproteinase 13 in the supernatant and intracellular decreased by 47% and 59%, respectively. In vivo study, ICA-loaded Exos exhibited prolonged retention behavior by multifunctional hydrogel delivery, thus displayed an increased cartilage protection. In the model of osteoarthritis, co-delivery hydrogel system relieved the cartilage recession, ensuring appropriate cartilage thickness.

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来源期刊
Asian Journal of Pharmaceutical Sciences
Asian Journal of Pharmaceutical Sciences Pharmacology, Toxicology and Pharmaceutics-Pharmaceutical Science
CiteScore
18.30
自引率
2.90%
发文量
11
审稿时长
14 days
期刊介绍: The Asian Journal of Pharmaceutical Sciences (AJPS) serves as the official journal of the Asian Federation for Pharmaceutical Sciences (AFPS). Recognized by the Science Citation Index Expanded (SCIE), AJPS offers a platform for the reporting of advancements, production methodologies, technologies, initiatives, and the practical application of scientific knowledge in the field of pharmaceutics. The journal covers a wide range of topics including but not limited to controlled drug release systems, drug targeting, physical pharmacy, pharmacodynamics, pharmacokinetics, pharmacogenomics, biopharmaceutics, drug and prodrug design, pharmaceutical analysis, drug stability, quality control, pharmaceutical engineering, and material sciences.
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