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首页> 外文期刊>Journal of Controlled Release: Official Journal of the Controlled Release Society >Seeing is believing, PLGA microsphere degradation revealed in PLGA microsphere/PVA hydrogel composites
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Seeing is believing, PLGA microsphere degradation revealed in PLGA microsphere/PVA hydrogel composites

机译:眼见为实,PLGA微球/ PVA水凝胶复合材料显示出PLGA微球降解

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The aim of this study was to understand the polymer degradation and drug release mechanism from PLGA microspheres embedded in a PVA hydrogel. Two types of microspheres were prepared with different molecular weight PLGA polymers (approximately 25 and 7 kDa) to achieve different drug release profiles, with a 9-day lag phase and without a lag phase, respectively. The kinetics of water uptake into the microspheres coincided with the drug release profiles for both formulations. For the 25 kDa microspheres, minimal water uptake was observed in the early part of the lag phase followed by substantial water uptake at the later stages and in the drug release phase. For the 7 kDa microspheres, water uptake occurred simultaneously with drug release. Water uptake was approximately 2-3 times that of the initial microsphere weight for both formulations. The internal structure of the PLGA microspheres was evaluated using low temperature scanning electron microscopy (cryo-SEM). Burst drug release occurred followed by pore forming from the exterior to the core of both microspheres. A well-defined hydrogel/microsphere interface was observed. For the 25 kDa microspheres, internal pore formation and swelling occurred before the second drug release phase. The surface layer of the microspheres remained intact whereas swelling, and degradation of the core continued throughout the drug release period. In addition, microsphere swelling reduced glucose transport through the coatings in PBS media and this was considered to be a as a consequence of the increased thickness of the coatings. The combination of the swelling and microdialysis results provides a fresh understanding on the competing processes affecting molecular transport of bioanalytes (i.e. glucose) through these composite coatings during prolonged exposure in PBS. (C) 2016 Elsevier B.V. All rights reserved.
机译:这项研究的目的是了解嵌入PVA水凝胶的PLGA微球的聚合物降解和药物释放机理。用不同分子量的PLGA聚合物(约25和7 kDa)制备两种类型的微球,以实现不同的药物释放曲线,分别具有9天的滞后阶段和无滞后阶段。两种制剂中水吸收的动力学与药物释放曲线一致。对于25 kDa的微球,在滞后阶段的早期观察到最小的吸水量,随后在后期和药物释放阶段观察到大量吸水。对于7 kDa的微球,吸水与药物释放同时发生。两种配方的吸水量约为初始微球重量的2-3倍。 PLGA微球的内部结构使用低温扫描电子显微镜(cryo-SEM)进行评估。爆发了药物释放,随后从两个微球的外部到核心都形成了孔。观察到明确定义的水凝胶/微球界面。对于25 kDa的微球,在第二个药物释放阶段之前就发生了内部孔形成和溶胀。微球的表面层保持完整,而在整个药物释放期间,肿胀和核心的降解仍在继续。另外,微球溶胀减少了葡萄糖在PBS介质中通过涂层的转运,这被认为是涂层厚度增加的结果。溶胀和微透析结果的结合提供了关于竞争过程的最新理解,这些竞争过程在延长的PBS暴露期间影响了生物分析物(即葡萄糖)通过这些复合涂层的分子运输。 (C)2016 Elsevier B.V.保留所有权利。

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