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Green fluorescent proteins engineered for cartilage-targeted drug delivery: Insights for transport into highly charged avascular tissues

机译:工程为软骨靶向药物递送的绿色荧光蛋白:用于运输到高度充电的缺血组织的见解

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摘要

Osteoarthritis (OA), the most common form of arthritis, is a multi-factorial disease that primarily affects cartilage as well as other joint tissues such as subchondral bone. The lack of effective drug delivery, due to the avascular nature of cartilage and the rapid clearance of intra-articularly delivered drugs via the synovium, remains a major challenge in the development of disease modifying drugs for OA. Cationic delivery carriers can significantly enhance the uptake, penetration and retention of drugs in cartilage by interacting with negatively charged matrix proteoglycans. In this study, we used "supercharged" green fluorescent proteins (GFPs), engineered to have a wide range of net positive charge and surface charge distributions, to characterize the effects of carrier charge on transport into cartilage in isolation of other factors such as carrier size and shape. We quantified the uptake, extent of cartilage penetration and cellular uptake of the GFP variants into living human knee cartilage and bovine cartilage explants. Based on these results, we identified optimal net charges of GFP carriers for potential drug targets located within cartilage extracellular matrix as well as the resident live chondrocytes. These cationic GFPs did not have adverse effects on cartilage in terms of measured cell viability and metabolism, cartilage cell biosynthesis and matrix degradation at doses needed for drug delivery. In addition to quantifying the kinetics of GFP uptake, we developed a predictive mathematical model for transport of the GFP variants that exhibited the highest uptake and penetration into cartilage. This model was further used to predict the transport behavior of GFPs during scale-up to in vivo applications such as intra-articular injection into human knees. The insights gained from this study set the stage for development of cartilage-targeted delivery systems to prevent cartilage degeneration, improve tissue regeneration and reduce inflammation that may cause degradation of other joint tissues affected by OA.
机译:骨关节炎(OA)是最常见的关节炎形式,是一种多因素疾病,主要影响软骨以及其他联合组织如骨髓内骨。由于软骨的缺乏性质和通过Synovium的缺乏型药物的快速清除,缺乏有效的药物递送,仍然是疾病改性药物的疾病的主要挑战。通过与带负电的基质蛋白增蛋白相互作用,阳离子输送载体可以显着增强软骨中药物的吸收,渗透和保留。在这项研究中,我们使用“增压”绿色荧光蛋白(GFP),设计成具有广泛的净正电荷和表面电荷分布,以表征载体电荷对载体等其他因素的输送到软骨中的效果尺寸和形状。我们量化了渗透的吸收,包括GFP变体的细胞吸收到活人膝关节软骨和牛软骨外植体。基于这些结果,我们确定了位于软骨细胞外基质中的潜在药物靶标的GFP载体的最佳净电荷,以及常驻活性软骨细胞。这些阳离子GFP在测量的细胞活力和代谢方面对软骨产生不利影响,软骨细胞生物合成和药物递送剂量所需剂量的基质劣化。除了量化GFP吸收的动力学之外,我们还开发了一种用于运输GFP变体的预测数学模型,该模型表现出最高摄取和渗入软骨的渗透。该模型进一步用于预测在体内应用中的扩展过程中GFP的传输行为,例如关节内注射到人膝盖。本研究中获得的见解设定了软骨靶向递送系统的发展阶段,以防止软骨变性,改善组织再生,减少可能导致受OA影响其他关节组织的降解的炎症。

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