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自由基法硫酯功能共聚物的生物相容性和生理硫解降解性:药物释放的机会。

Biocompatibility and Physiological Thiolytic Degradability of Radically Made Thioester-Functional Copolymers: Opportunities for Drug Release.

机构信息

Department of Chemistry, School of Chemistry and Chemical Engineering, University of Surrey, Guildford, Surrey GU2 7XH, United Kingdom.

Department of Chemical and Process Engineering, School of Chemistry and Chemical Engineering, University of Surrey, Guildford, Surrey GU2 7XH, United Kingdom.

出版信息

Biomacromolecules. 2022 May 9;23(5):2031-2039. doi: 10.1021/acs.biomac.2c00039. Epub 2022 Apr 26.

Abstract

Being nondegradable, vinyl polymers have limited biomedical applicability. Unfortunately, backbone esters incorporated through conventional radical ring-opening methods do not undergo appreciable abiotic hydrolysis under physiologically relevant conditions. Here, PEG acrylate and di(ethylene glycol) acrylamide-based copolymers containing backbone thioesters were prepared through the radical ring-opening copolymerization of the thionolactone dibenzo[c,e]oxepin-5(7)-thione. The thioesters degraded fully in the presence of 10 mM cysteine at pH 7.4, with the mechanism presumed to involve an irreversible S-N switch. Degradations with -acetylcysteine and glutathione were reversible through the thiol-thioester exchange polycondensation of R-SC(═O)-polymer-SH fragments with full degradation relying on an increased thiolate/thioester ratio. Treatment with 10 mM glutathione at pH 7.2 (mimicking intracellular conditions) triggered an insoluble-soluble switch of a temperature-responsive copolymer at 37 °C and the release of encapsulated Nile Red (as a drug model) from core-degradable diblock copolymer micelles. Copolymers and their cysteinolytic degradation products were found to be noncytotoxic, making thioester backbone-functional polymers promising for drug delivery applications.

摘要

由于不降解,乙烯基聚合物在生物医学中的应用有限。不幸的是,通过传统自由基开环方法引入的主链酯在生理相关条件下不会发生明显的非生物水解。在这里,通过硫代内酰胺二苯并[c,e]氧杂环庚-5(7)-硫酮的自由基开环共聚,制备了含有主链硫酯的聚乙二醇丙烯酸酯和二(乙二醇)丙烯酰胺基共聚物。在 pH 7.4 下,10 mM 半胱氨酸存在时,硫酯完全降解,其机制推测涉及不可逆的 S-N 转换。通过 R-SC(═O)-聚合物-SH 片段的硫醇-硫酯交换缩聚,-乙酰半胱氨酸和谷胱甘肽的降解是可逆的,完全降解依赖于硫醇/硫酯比的增加。在 pH 7.2 下用 10 mM 谷胱甘肽(模拟细胞内条件)处理,在 37°C 时触发温度响应共聚物的不溶性-可溶性转换,以及从核可降解二嵌段共聚物胶束中释放包封的尼罗红(作为药物模型)。共聚物及其半胱氨酸裂解产物被发现无细胞毒性,使得硫酯主链功能聚合物在药物输送应用中具有广阔的前景。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/0ba3/9092349/ab45908dfc82/bm2c00039_0005.jpg

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