关节内注射Kartogenin增强骨髓间充质干细胞治疗膝关节骨性关节炎

W. Zeng, Qiu-Ping Yu, Duan Wang, Yipeng Zeng, Hao Yang, Juan Li, Chengguang Zhou, Qing Jun Yang, Z. Deng, Zong-ke Zhou
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引用次数: 0

摘要

关节内注射间充质干细胞(MSCs)是骨关节炎(OA)的一种有吸引力的治疗方法,因为它们在临床环境中易于使用,具有良好的安全性,并且具有显著的自发软骨修复作用。然而,在控制和诱导干细胞分化为所需的软骨谱系方面出现了重大挑战。Kartogenin (KGN)是一种疏水小分子药物,可显著促进骨性关节炎MSCs的成软骨分化,诱导软骨再生。但其水溶性低,生物利用度差,限制了其生物学应用。在本文中,我们提出了一种基于多功能纳米氧化石墨烯(NGO)的纳米药物递送系统,通过π -π堆叠和疏水相互作用(PPG-KGN)有效地非共价加载KGN分子,并能快速进入msc。在关节内注射前,将MSCs与PPG-KGN混合共孵育,获得KGN增强的MSCs。这允许KGN在细胞内的有效传递,从而促进间充质干细胞的软骨分化能力。我们研究了kgn增强的MSCs在膝关节骨关节炎治疗中的作用。体外研究表明,PPG在培养后4小时内迅速被吸收,12小时达到饱和,并在MSCs的溶酶体和细胞质中积累。因此,PPG-KGN可以提高KGN的细胞内递送效率,显示出MSCs具有非常高的成软骨分化能力。应用于大鼠OA软骨损伤模型,在注射到膝关节之前,用PPG-KGN预处理MSCs。通过x线片、负重和组织学分析证明,PPG-KGN预处理的MSCs有助于防止关节间隙狭窄、病理性矿化、骨关节炎的发展、oa引起的疼痛的行为评估和组织再生。基于这些发现,我们建议使用PPG来递送KGN,以增强骨关节炎治疗中的MSC软骨形成潜力。
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Intra-Articular Injection of Kartogenin Enhanced Bone Marrow-Derived Mesenchymal Stem Cells in the Treatment of Knee Osteoarthritis
Intra-articular injection of mesenchymal stem cells (MSCs) is an attractive treatment for osteoarthritis (OA) due to their ease of use in clinical settings, excellent safety profile, and remarkable spontaneous cartilage repair. However, significant challenges arise in relation to the control and induction of stem cell differentiation into the desired cartilaginous lineage. Kartogenin (KGN), a hydrophobic small molecule drug, may significantly promote chondrogenic differentiation of MSCs and induce cartilage regeneration in OA. However, low water solubility and poor bioavailability limits its biological application. In this report, we propose a new nano-drug delivery system based on multifunctional nanographene oxide (NGO) to efficiently load KGN molecules noncovalently via π–π stacking and hydrophobic interactions (PPG-KGN), which could quickly enter MSCs. Before intra-articular injection, MSCs are simply mixed and co-incubated with PPG-KGN to acquire KGN enhanced MSCs. This allows the efficient intracellular delivery of KGN, thereby promoting the chondrogenic differentiation potency of the MSCs. We investigated the effect of KGN-enhanced MSCs in the treatment of knee osteoarthritis. An in vitro study showed the PPG could be rapidly uptaken in the first 4 h after incubation, reaching saturation at 12 h, and accumulating in the lysosome and cytoplasm of MSCs. Thus, PPG-KGN could enhance the efficiency of the intracellular delivery of KGN, which showed remarkably high chondrogenic differentiation capacity of the MSCs. When applied to an OA model of cartilage injury in rats, MSCs were preconditioned with PPG-KGN before being injected into the knee joint. It demonstrated the PPG-KGN preconditioned MSCs contribute to protection from joint space narrowing, pathologic mineralization, osteoarthritis development, behavioral assessment of OA-induced pain, and tissue regeneration, as evidenced by radiographic, weight bearing, and histological analysis. Based on these findings, we propose the use of PPG for delivery of KGN to achieve enhanced MSC chondrogenic potential in osteoarthritis treatment.
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