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无化学试剂制备具有丝 I 结构的丝素蛋白微球。

Chemical-free fabrication of silk fibroin microspheres with silk I structure.

机构信息

State Key Laboratory of New Textile Materials and Advanced Processing Technologies, School of Textile Science and Engineering, Wuhan Textile University, Wuhan 430200, China.

State Key Laboratory of New Textile Materials and Advanced Processing Technologies, School of Textile Science and Engineering, Wuhan Textile University, Wuhan 430200, China.

出版信息

Int J Biol Macromol. 2024 Oct;278(Pt 4):134927. doi: 10.1016/j.ijbiomac.2024.134927. Epub 2024 Aug 28.

DOI:10.1016/j.ijbiomac.2024.134927
PMID:39182862
Abstract

Silk fibroin (SF) microspheres show bright prospects for biomedical applications, such as microcarriers, drug delivery, tumor embolization agents, and microscaffolds. However, the chemistry-independent preparation of SF microspheres, which is critical to biomedical applications, has been challenging. In this study, the SF microspheres with silk I crystal type were generated by using electrostatic spraying and freezing-induced assembly. The SF solution was sprayed into liquid nitrogen to form frozen microspheres with tunable size. Annealing can crystallize frozen SF to form silk I crystal type, providing a green approach to harvest water-insoluble microspheres. The SF microspheres can retain a monolithic shape in water for up to 30 days, while having a 77 % degradation ratio in PBS in 14 days, showing high stability in water and rapid degradation under physiological conditions. The biomedical application prospects of the silk I microspheres were demonstrated by cell culture and small molecule drugs (doxorubicin). The microspheres can support the growth and expansion of mammalian cells, and provide a sustainable release for DOX with 10 days. This strategy offers a green approach that avoids the use of organic solvents and cross-linkers for designing SF microsphere biomaterials.

摘要

丝素蛋白(SF)微球在生物医药领域具有广阔的应用前景,如微载体、药物传递、肿瘤栓塞剂和微支架等。然而,对于生物医药应用至关重要的、不依赖于化学的 SF 微球制备方法一直具有挑战性。在这项研究中,通过静电喷涂和冷冻诱导组装生成了具有丝 I 型晶体的 SF 微球。SF 溶液被喷射到液氮中形成具有可调节尺寸的冷冻微球。退火可以使冷冻 SF 结晶形成丝 I 型晶体,为收获不溶于水的微球提供了一种绿色方法。SF 微球在水中可保持完整的球形长达 30 天,而在 PBS 中 14 天的降解率为 77%,在水中具有很高的稳定性,在生理条件下能迅速降解。丝 I 微球的生物医学应用前景通过细胞培养和小分子药物(阿霉素)得到了证明。微球可以支持哺乳动物细胞的生长和扩增,并能持续释放 DOX 达 10 天。该策略提供了一种绿色方法,避免了使用有机溶剂和交联剂来设计 SF 微球生物材料。

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