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仿生羟磷灰石作为治疗类风湿性关节炎的潜在聚合物纳米载体。

Biomimetic hydroxyapatite as potential polymeric nanocarrier for the treatment of rheumatoid arthritis.

机构信息

Department of Pharmacy, Quaid-i-Azam University, Islamabad, Pakistan.

出版信息

J Biomed Mater Res A. 2019 Dec;107(12):2595-2600. doi: 10.1002/jbm.a.36765. Epub 2019 Aug 19.

Abstract

Rheumatoid arthritis (RA) is a chronic autoimmune disease of unknown etiology with much higher prevalence in world's population. RA is initially associated with inflammation of joints and cartilages that ultimately leads to their destruction thus requiring a therapeutic intervention. The available conventional therapeutic strategies for RA are not satisfactory because of the associated side effects such as toxicity, delayed action, and dependence. Therefore, a carrier system is required that should deliver the drug to the target site with minimal side effects. In this connection, nanocarrier systems are of prime importance because of the associated benefits such as their nano-scaled size, targeted drug delivery, and reduced toxicity that can improve the patient's compliance. Moreover, in the past few decades, nano-particulate-based drug delivery approaches that have been investigated for the treatment of RA include ceramics, polymers, and hydrogels. Among these nanocarrier systems, ceramics like hydroxyapatite have gathered striking attention due to their bioactive, biocompatible, and bio-conductive characteristics. Nano-sized hydroxyapatite (HA) permeates the bone tissues and serves as a source of calcium phosphates required for bone repairing that are damaged during disease process. The aim of this review article is to highlight the potential use of HA as nanocarrier for anti-rheumatic drugs as well its possible effect on bone remodeling.

摘要

类风湿性关节炎(RA)是一种病因不明的慢性自身免疫性疾病,在世界人口中的患病率要高得多。RA 最初与关节和软骨的炎症有关,最终导致其破坏,因此需要进行治疗干预。由于存在毒性、作用延迟和依赖性等相关副作用,目前用于 RA 的常规治疗策略并不令人满意。因此,需要一种载体系统,以最小的副作用将药物递送到靶位。在这方面,纳米载体系统非常重要,因为它们具有纳米级尺寸、靶向药物传递和降低毒性等相关益处,可以提高患者的顺应性。此外,在过去几十年中,已经研究了基于纳米颗粒的药物输送方法来治疗 RA,包括陶瓷、聚合物和水凝胶。在这些纳米载体系统中,羟基磷灰石等陶瓷因其具有生物活性、生物相容性和生物导电性而受到了极大的关注。纳米级羟基磷灰石(HA)渗透到骨组织中,并作为在疾病过程中受损的骨修复所需的钙磷酸盐的来源。本文的目的是强调将 HA 用作抗风湿药物的纳米载体的潜力,以及它对骨重塑的可能影响。

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