Department of Orthopedics, Zhongshan Hospital, Fudan University, State Key Laboratory of Molecular Engineering of Polymers, Laboratory of Advanced Materials and Department of Macromolecular Science, Fudan University, Shanghai, 200032, China.
Department of Orthopedics, Shanghai Geriatrics Medical Center, Fudan University, Shanghai, 201100, China.
Small. 2024 Nov;20(46):e2405049. doi: 10.1002/smll.202405049. Epub 2024 Aug 5.
In the therapy of early-stage osteoarthritis, to accomplish full infiltration of subchondral bone and cartilage, and to target osteoclast and chondrocyte simultaneously remain challenges in biomaterials design. Herein, a novel hierarchical drug delivery system is introduced, with micrometer-scale outer layer spheres composed of regenerated silk fibroin, characterized by connected porous structure through the n-butanol and regenerated silk fibroin combined emulsion route and freezing method. The design effectively resists clearance from the joint cavity, ensuring stable delivery and prolonged residence time within the joint space. Additionally, the system incorporates phenylboronic acid-enriched silk fibroin nanoparticles, stabilized through chemical cross-linking, which encapsulate isoliquiritin derived from Glycyrrhiza uralensis. These nanoparticles facilitate complete penetration of the cartilage extracellular matrix, exhibit pH-responsive behavior, neutralize reactive oxygen species, and enable controlled drug release, thereby enhancing therapeutic efficacy. The in vitro and in vivo experiments both demonstrate that the composite micro/nanospheres not only inhibit osteoclastogenesis with bone loss in subchondral bone and osteophyte formation, but also mitigate chondrocytes apoptosis, reduce oxidative stress associated with cartilage degeneration, and ameliorate neuropathic hyperalgesia, with the underlying mechanisms being elucidated. The study indicates that such an injectable strategy combining organic biomaterials with Chinese medicine holds substantial promise for the treatment of early osteoarthritis.
在早期骨关节炎的治疗中,要实现软骨下骨和软骨的完全渗透,并同时靶向破骨细胞和软骨细胞,这仍然是生物材料设计中的挑战。本文介绍了一种新型的分层药物输送系统,其具有微米级的外层球体,由再生丝素纤维组成,通过正丁醇和再生丝素复合乳液途径以及冷冻方法形成连通的多孔结构。该设计有效地抵抗了从关节腔中的清除,确保了在关节腔内的稳定输送和延长的停留时间。此外,该系统还包含富苯基硼酸的丝素纳米粒子,通过化学交联稳定,这些纳米粒子可以包裹甘草中的异甘草素。这些纳米粒子有助于完全穿透软骨细胞外基质,表现出 pH 响应行为,中和活性氧,并实现药物的控制释放,从而提高治疗效果。体外和体内实验均表明,这种复合微/纳米球不仅可以抑制软骨下骨和骨赘形成中的破骨细胞生成和骨丢失,还可以减轻软骨细胞凋亡,减少与软骨退化相关的氧化应激,并改善神经病理性痛觉过敏,其潜在机制也得到了阐明。该研究表明,这种将有机生物材料与中药相结合的可注射策略,为早期骨关节炎的治疗提供了很大的希望。