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高内相乳液中聚乙二醇的硫醇-烯交联:用于控释药物的可降解亲水性聚高内相乳液

Thiol-Ene Cross-linking of Poly(ethylene glycol) within High Internal Phase Emulsions: Degradable Hydrophilic PolyHIPEs for Controlled Drug Release.

作者信息

Hobiger Viola, Zahoranova Anna, Baudis Stefan, Liska Robert, Krajnc Peter

机构信息

PolyOrgLab, Faculty of Chemistry and Chemical Engineering, University of Maribor, Smetanova 17, Maribor 2000, Slovenia.

Institute of Applied Synthetic Chemistry, Vienna University of Technology, Getreidemarkt 9/163, Vienna 1060, Austria.

出版信息

Macromolecules. 2021 Nov 23;54(22):10370-10380. doi: 10.1021/acs.macromol.1c01240. Epub 2021 Nov 8.

Abstract

Macroporous polymer monoliths prepared from high internal phase emulsions (HIPEs) can be found in various biomedical applications. While typically water-in-oil HIPEs are applied for polyHIPE preparation, they are not suitable for hydrophilic polyHIPE preparation. Herein, direct oil-in-water emulsions based on water-soluble poly(ethylene glycol)diacrylate or poly(ethylene glycol)dimethacrylate were developed. Furthermore, the incorporation of a hydrophilic water-miscible thiol, ethoxylated trimethylolpropane tris(3-mercaptopropionate) (ETTMP) was reported for the first time within thiol-ene polyHIPEs. Due to the transparency of the emulsions, rapid curing via photopolymerization was feasible. The average pore diameters of the resulting polyHIPEs ranged between 1.2 and 3.6 μm, and porosity of up to 90% was achieved. The water uptake of the materials reached up to 1000% by weight. Drug loading and release were demonstrated, employing salicylic acid as a model drug. Porous profile and biodegradability add to the usefulness of the material for biomedical applications.

摘要

由高内相乳液(HIPE)制备的大孔聚合物整体柱可用于各种生物医学应用。虽然通常油包水型HIPE用于制备聚HIPE,但它们不适用于亲水性聚HIPE的制备。在此,开发了基于水溶性聚乙二醇二丙烯酸酯或聚乙二醇二甲基丙烯酸酯的直接水包油乳液。此外,首次报道了在硫醇-烯聚HIPE中引入亲水性可与水混溶的硫醇——乙氧基化三羟甲基丙烷三(3-巯基丙酸酯)(ETTMP)。由于乳液的透明度,通过光聚合进行快速固化是可行的。所得聚HIPE的平均孔径在1.2至3.6μm之间,孔隙率高达90%。材料的吸水率达到了1000%(重量)。以水杨酸为模型药物,证明了药物的负载和释放。多孔结构和生物降解性增加了该材料在生物医学应用中的实用性。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/cc3d/8619294/ef6036b9ac0e/ma1c01240_0002.jpg

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