Chen Jun, Wu Guoya, Wu Jian, Jiao Zhijian
Department of Orthopedics, Xianning Central Hospital, The First Affiliated Hospital of Hubei University of Science and Technology, NO. 228 Jingui Road, Xian'an District, Xianning, Hubei, 437100, China.
J Orthop Surg Res. 2025 Mar 20;20(1):300. doi: 10.1186/s13018-025-05698-z.
Osteoarthritis (OA) is the most prevalent arthritic disease characterized by cartilage degradation and low-grade inflammation, for which there remains a lack of efficacious therapeutic interventions. Notably, mitigating the impact of oxidative stress (OS) and inflammatory factors could help alleviate or hinder the advancement of OA. Given the benefits of both quercetin (Que) and Magnesium ion (Mg) in OA treatment, coupled with the structural properties of Que, we have innovatively developed the Que-Mg nanoparticles (NPs), aiming to deliver both Que and Mg simultaneously and achieve enhanced therapeutic outcomes for OA. Moreover, to avoid the adverse reactions linked to frequent injections, sodium alginate (SA) microspheres encapsulating Que-Mg NPs (Que-Mg@SA) were designed to treat the HO-induced OA cell model.
Que-Mg@SA microspheres were synthesized using the ionotropic gelation technique, with calcium chloride acting as the cross-linking agent. Comprehensive characterization of the Que-Mg@SA was conducted through transmission electron microscope (TEM), dynamic light scattering (DLS), optical microscope, and scanning electron microscope (SEM), which provided detailed insights into their size, zeta potential, morphology, and micromorphology. Additionally, the microsphere swelling rate and Que release were evaluated. The biocompatibility of Que-Mg@SA microspheres, along with their impact on chondrocyte viability, were detected through CCK-8 assay and live/dead cell staining. Furthermore, the antioxidant and anti-inflammatory properties of Que-Mg@SA were evaluated by examining the ROS scavenging ability and pro-inflammatory factors levels, respectively. Finally, the regulatory influence of Que-Mg@SA microspheres on extracellular matrix (ECM) metabolism in OA was assessed by immunofluorescence staining and Western blot.
Characterization results revealed that Que-Mg NPs exhibit nanoscale diameter, exceptional stability, and good dispersibility, while Que-Mg@SA possesses high entrapment efficiency (EE%) and loading efficiency (LE%), pronounced hygroscopic properties, and sustained drug-release capabilities. Additionally, in vitro cellular assays revealed that the biocompatible Que-Mg@SA microspheres significantly restored chondrocyte viability, scavenged HO-induced excessive ROS, reduced the levels of inflammatory cytokines, upregulated cartilage anabolic gene expression, downregulated cartilage catabolic protease gene expression, and maintained the metabolic balance of cartilage tissue.
The functionalized Que-Mg@SA microspheres developed in our study hold great promise as a drug delivery system for OA and potentially other biomedical applications.
Not applicable.
骨关节炎(OA)是最常见的关节炎疾病,其特征为软骨降解和低度炎症,目前仍缺乏有效的治疗干预措施。值得注意的是,减轻氧化应激(OS)和炎症因子的影响有助于缓解或阻碍OA的进展。鉴于槲皮素(Que)和镁离子(Mg)在OA治疗中的益处,结合Que的结构特性,我们创新性地开发了Que-Mg纳米颗粒(NPs),旨在同时递送Que和Mg,并实现对OA更好的治疗效果。此外,为避免频繁注射带来的不良反应,设计了包裹Que-Mg NPs的海藻酸钠(SA)微球来治疗羟基磷灰石诱导的OA细胞模型。
采用离子凝胶法合成Que-Mg@SA微球,氯化钙作为交联剂。通过透射电子显微镜(TEM)、动态光散射(DLS)、光学显微镜和扫描电子显微镜(SEM)对Que-Mg@SA进行全面表征,详细了解其尺寸、zeta电位、形态和微观形态。此外,还评估了微球的溶胀率和Que释放情况。通过CCK-8检测和活/死细胞染色检测Que-Mg@SA微球的生物相容性及其对软骨细胞活力的影响。此外,分别通过检测ROS清除能力和促炎因子水平来评估Que-Mg@SA的抗氧化和抗炎特性。最后,通过免疫荧光染色和蛋白质印迹法评估Que-Mg@SA微球对OA中细胞外基质(ECM)代谢的调节作用。
表征结果显示,Que-Mg NPs具有纳米级直径、出色的稳定性和良好的分散性,而Que-Mg@SA具有高包封率(EE%)和载药率(LE%)、显著的吸湿性能和持续的药物释放能力。此外,体外细胞实验表明,具有生物相容性的Que-Mg@SA微球显著恢复了软骨细胞活力,清除了羟基磷灰石诱导的过量ROS,降低了炎症细胞因子水平,上调了软骨合成基因表达,下调了软骨分解蛋白酶基因表达,并维持了软骨组织的代谢平衡。
我们研究中开发的功能化Que-Mg@SA微球作为OA的药物递送系统以及潜在的其他生物医学应用具有很大的前景。
不适用。