Li Xu, Dai Bingyang, Guo Jiaxin, Zheng Lizhen, Guo Quanyi, Peng Jiang, Xu Jiankun, Qin Ling
Musculoskeletal Research Laboratory, Department of Orthopedics and Traumatology, The Chinese University of Hong Kong, Sha Tin, Hong Kong, SAR, People's Republic of China.
Joint Laboratory of Chinese Academic of Science and Hong Kong for Biomaterials, The Chinese University of Hong Kong, Sha Tin, Hong Kong, SAR, People's Republic of China.
Nanomicro Lett. 2021 Jun 23;13(1):149. doi: 10.1007/s40820-021-00670-y.
Osteoarthritis is the most prevalent chronic and debilitating joint disease, resulting in huge medical and socioeconomic burdens. Intra-articular administration of agents is clinically used for pain management. However, the effectiveness is inapparent caused by the rapid clearance of agents. To overcome this issue, nanoparticles as delivery systems hold considerable promise for local control of the pharmacokinetics of therapeutic agents. Given the therapeutic programs are inseparable from pathological progress of osteoarthritis, an ideal delivery system should allow the release of therapeutic agents upon specific features of disorders. In this review, we firstly introduce the pathological features of osteoarthritis and the design concept for accurate localization within cartilage for sustained drug release. Then, we review the interactions of nanoparticles with cartilage microenvironment and the rational design. Furthermore, we highlight advances in the therapeutic schemes according to the pathology signals. Finally, armed with an updated understanding of the pathological mechanisms, we place an emphasis on the development of "smart" bioresponsive and multiple modality nanoparticles on the near horizon to interact with the pathological signals. We anticipate that the exploration of nanoparticles by balancing the efficacy, safety, and complexity will lay down a solid foundation tangible for clinical translation.
骨关节炎是最常见的慢性致残性关节疾病,会导致巨大的医疗和社会经济负担。关节腔内给药在临床上用于疼痛管理。然而,由于药物的快速清除,其有效性并不明显。为克服这一问题,纳米颗粒作为递送系统在局部控制治疗药物的药代动力学方面具有很大潜力。鉴于治疗方案与骨关节炎的病理进展密不可分,理想的递送系统应能根据疾病的特定特征释放治疗药物。在本综述中,我们首先介绍骨关节炎的病理特征以及在软骨内准确定位以实现药物持续释放的设计理念。然后,我们综述纳米颗粒与软骨微环境的相互作用以及合理设计。此外,我们根据病理信号突出治疗方案的进展。最后,基于对病理机制的最新认识,我们强调即将出现的“智能”生物响应性和多模态纳米颗粒与病理信号相互作用的发展。我们预计,通过平衡疗效、安全性和复杂性来探索纳米颗粒将为临床转化奠定坚实的基础。