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首页> 外文期刊>Journal of biomaterials science >Poly(ethylene glycol)-poly(lactic-co-glycolic acid) core-shell microspheres with enhanced controllability of drug encapsulation and release rate
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Poly(ethylene glycol)-poly(lactic-co-glycolic acid) core-shell microspheres with enhanced controllability of drug encapsulation and release rate

机译:聚(乙二醇)-聚(乳酸-乙醇酸)核壳微球,具有增强的药物包封和释放速率可控性

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摘要

Poly(lactic-co-glycolic acid) (PLGA) microspheres have been widely used as drug carriers for minimally invasive, local, and sustained drug delivery. However, their use is often plagued by limited controllability of encapsulation efficiency, initial burst, and release rate of drug molecules, which cause unsatisfactory outcomes and several side effects including inflammation. This study presents a new strategy of tuning the encapsulation efficiency and the release rate of protein drugs from a PLGA microsphere by filling the hollow core of the microsphere with poly(ethylene glycol) (PEG) hydrogels of varying cross-linking density. The PEG gel cores were prepared by inducing in situ cross-linking reactions of PEG monoacrylate solution within the PLGA microspheres. The resulting PEG-PLGA core-shell microspheres exhibited (1) increased encapsulation efficiency, (2) decreased initial burst, and (3) a more sustained release of protein drugs, as the cross-linking density of the PEG gel core was increased. In addition, implantation of PEG-PLGA core-shell microspheres encapsulated with vascular endothelial growth factor (VEGF) onto a chicken chorioallantoic membrane resulted in a significant increase in the number of new blood vessels at an implantation site, while minimizing inflammation. Overall, this strategy of introducing PEG gel into PLGA microspheres will be highly useful in tuning release rates and ultimately in improving the therapeutic efficacy of a wide array of protein drugs.
机译:聚乳酸-乙醇酸共聚物(PLGA)微球已被广泛用作微创,局部和持续给药的药物载体。然而,它们的使用常常受到封装效率,药物分子的初始爆发和释放速率的可控性有限的困扰,这导致不良的结果和包括炎症在内的若干副作用。这项研究提出了一种新的策略,可通过用可变交联密度的聚乙二醇(PEG)水凝胶填充微球的中空核心来调节PLGA微球的蛋白药物的包封效率和释放速率。通过在PLGA微球内诱导PEG单丙烯酸酯溶液的原位交联反应来制备PEG凝胶核。所得的PEG-PLGA核-壳微球表现出(1)包封效率提高,(2)初始突释减少和(3)随着PEG凝胶核交联密度的增加,蛋白质药物的释放更加持续。此外,将包裹有血管内皮生长因子(VEGF)的PEG-PLGA核-壳微球植入鸡绒膜尿囊膜,可显着增加植入部位的新血管数量,同时将炎症最小化。总体而言,这种将PEG凝胶引入PLGA微球的策略在调节释放速率以及最终改善各种蛋白药物的治疗功效方面将非常有用。

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