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通过使用GelMA/HAMA水凝胶支架进行二次包封实现聚己内酯-海藻酸盐微球的控释。

Controlled release from PCL-alginate microspheres via secondary encapsulation using GelMA/HAMA hydrogel scaffolds.

作者信息

Caballero Aguilar Lilith M, Kapsa Robert M, O'Connell Cathal D, McArthur Sally L, Stoddart Paul R, Moulton Simon E

机构信息

ARC Centre of Excellence for Electromaterials Science, Faculty of Science, Engineering and Technology, Swinburne University of Technology, Melbourne, 3122, Australia.

出版信息

Soft Matter. 2019 May 8;15(18):3779-3787. doi: 10.1039/c8sm02575d.

Abstract

Controlling the release of bioactive agents has important potential applications in tissue engineering. While microspheres have been investigated to manipulate release rates, the majority of these investigations have been based on delivery into aqueous media, whereas the cellular environment in tissue engineering is more typically a hydrogel scaffold. If drug-loaded microspheres are introduced within scaffolds to deliver biologically active substances in situ, it is crucial to understand how the release rate is influenced by interactions between the microspheres and the scaffold. Here, we report the fabrication and characterization of a biodegradable scaffold that contains composite microspheres and is suitable for biological applications. Our approach evaluates the influence on the release profile of a model drug (FITC-dextran sulfate) from alginate and PCL-alginate microspheres within a hydrogel construct forming a secondary encapsulation. Increasing the degree of crosslinking in the secondary encapsulation matrix led to a slower cumulative release from 36% to 15%, from the alginate microspheres, whereas a decrease from 26% to 6% was observed for the PCL-alginate microspheres. These results suggest that the release of bioactive molecules can be fine tuned by independently engineering the properties of the scaffold and microspheres.

摘要

控制生物活性剂的释放在组织工程中具有重要的潜在应用。虽然已经对微球进行了研究以控制释放速率,但这些研究大多基于向水性介质中的递送,而组织工程中的细胞环境更典型的是水凝胶支架。如果将载药微球引入支架中以原位递送生物活性物质,那么了解微球与支架之间的相互作用如何影响释放速率至关重要。在此,我们报告了一种包含复合微球且适用于生物应用的可生物降解支架的制备和表征。我们的方法评估了在形成二次包封的水凝胶构建体中,藻酸盐和聚己内酯 - 藻酸盐微球对模型药物(异硫氰酸荧光素 - 硫酸葡聚糖)释放曲线的影响。二次包封基质中交联度的增加导致藻酸盐微球的累积释放从36%降至15%,而聚己内酯 - 藻酸盐微球的累积释放则从26%降至6%。这些结果表明,可以通过独立设计支架和微球的特性来微调生物活性分子的释放。

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