CAS Key Laboratory of Chemistry of Northwestern Plant Resources and Key Laboratory for Natural Medicine of Gansu Province, Lanzhou Institute of Chemical Physics, Chinese Academy of Sciences (CAS), Lanzhou, 730000, P. R. China.
Department of Orthopedics, Shanghai Jiao Tong University, Shanghai, 200233, P. R. China.
Macromol Biosci. 2021 Jan;21(1):e2000299. doi: 10.1002/mabi.202000299. Epub 2020 Oct 11.
Injectable hydrogels for nonsteroidal anti-inflammatory drugs' (NSAIDs) delivery to minimize the side effects of NSAIDs and achieve long-term sustained release at the targeted site of synovial joint are attractive for osteoarthritis therapy, but how to improve its mechanical strength remains a challenge. In this work, a kind of 1D natural clay mineral material, attapulgite (ATP), is introduced to a classical cyclodextrin pseudopolyrotaxane (PPR) system to form a reinforced supramolecular hydrogel for sustained release of diclofenac sodium (DS) due to its rigid, rod-like morphology, and unique structure, which has great potential in tissue regeneration, repair, and engineering. Investigation on the interior morphology and rheological property of the obtained hydrogel points out that the ATP distributed in PPR hydrogel plays a role similar to the "reinforcement in concrete" and exhibits a positive effect on improving the mechanical properties of PPR hydrogel by regulating their interior morphology from a randomly distributed style to the well-ordered porous frame structure. The hybrid hydrogels demonstrate good shear-thinning and thixotropic properties, excellent biocompability, and sustained release behavior both in vitro and in vivo. Furthermore, preliminary in vivo treatment in an acute inflammatory rat model reveals that the ATP hybrid hydrogels present sustained anti-inflammatory effect.
用于非甾体抗炎药(NSAIDs)递送的可注射水凝胶,以最小化 NSAIDs 的副作用并在滑膜关节的靶向部位实现长期持续释放,这对于骨关节炎治疗很有吸引力,但如何提高其机械强度仍然是一个挑战。在这项工作中,将一种一维天然粘土矿物材料——凹凸棒石(ATP)引入到经典的环糊精假轮烷(PPR)系统中,由于其刚性、棒状形态和独特的结构,形成了一种增强型超分子水凝胶,用于持续释放双氯芬酸钠(DS),在组织再生、修复和工程方面具有巨大的潜力。对所得水凝胶的内部形态和流变性能的研究表明,分布在 PPR 水凝胶中的 ATP 发挥了类似于“混凝土中的增强材料”的作用,并通过调节其内部形态从随机分布的样式到有序的多孔框架结构,对改善 PPR 水凝胶的机械性能产生了积极的影响。混合水凝胶表现出良好的剪切变稀和触变性能、优异的生物相容性以及体外和体内的持续释放行为。此外,在急性炎症大鼠模型中的初步体内治疗表明,ATP 混合水凝胶具有持续的抗炎作用。