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利用丝素蛋白和纳米颗粒调节微胶囊壳厚度和结构以实现持续释放

Tuning Microcapsule Shell Thickness and Structure with Silk Fibroin and Nanoparticles for Sustained Release.

作者信息

Wang Yongfeng, Cheng Qingqing, Liu Jian, Tariq Zeeshan, Zheng Zhaozhu, Li Gang, Kaplan David L, Wang Xiaoqin

机构信息

National Engineering Laboratory for Modern Silk, Soochow University, 199 Renai Road, Suzhou Industrial Park, Suzhou, Jiangsu 215123, P. R. China.

Suzhou Institute of Nano-Tech and Nano-Bionics, Chinese Academy of Sciences, Suzhou 215123, P. R. China.

出版信息

ACS Biomater Sci Eng. 2020 Aug 10;6(8):4583-4594. doi: 10.1021/acsbiomaterials.0c00835. Epub 2020 Jul 22.

Abstract

Microcapsules have attracted widespread interest for their unique properties in encapsulation, protection, and separation of active ingredients from the surrounding environment. However, microcapsule carriers with controllable shell thickness, permeability, good mechanical properties, and thermostability are challenging to obtain. Herein, robust and versatile composite microcapsules were fabricated using SiO nanoparticle-stabilized (Pickering) oil emulsions as core templates, while silk fibroin (SF) was assembled at the oil/water interface. This process resulted in the formation of physically and chemically stable microcapsules with a thick (∼800 nm) shell that protected the encapsulated ingredient from high shear forces and high temperatures during spray-drying. SiO nanoparticles were randomly distributed in the shell matrix after preparation, making the microcapsules mechanically robust (4.48 times higher than control samples prepared using surfactant Tween 80 instead of the SiO nanoparticles), as well as thermostable (retained shape to 900 °C). The microcapsules displayed tunable drug release by adjusting the SF content in the shell. Under optimal conditions (weight ratio of SiO/SF = 7:10, corn oil content about 55 wt %), a model drug (curcumin) was encapsulated in the SF microcapsules with an encapsulation efficiency up to 95%. The in vitro drug release from these SF microcapsules lasted longer than control microcapsules, demonstrating the capability of these novel microcapsules in sustaining drug release.

摘要

微胶囊因其在活性成分的包封、保护以及与周围环境分离方面的独特性能而引起了广泛关注。然而,要获得具有可控壳厚度、渗透性、良好机械性能和热稳定性的微胶囊载体具有挑战性。在此,以SiO纳米颗粒稳定的(Pickering)油乳液为核心模板制备了坚固且通用的复合微胶囊,同时丝素蛋白(SF)在油/水界面处组装。这一过程导致形成了物理和化学稳定的微胶囊,其具有较厚(约800 nm)的壳,在喷雾干燥过程中保护包封的成分免受高剪切力和高温的影响。制备后,SiO纳米颗粒随机分布在壳基质中,使微胶囊具有机械坚固性(比使用表面活性剂吐温80而非SiO纳米颗粒制备的对照样品高4.48倍)以及热稳定性(在900°C时仍保持形状)。通过调节壳中的SF含量,微胶囊表现出可调节的药物释放。在最佳条件下(SiO/SF重量比 = 7:10,玉米油含量约55 wt%),一种模型药物(姜黄素)被包封在SF微胶囊中,包封效率高达95%。这些SF微胶囊的体外药物释放持续时间比对照微胶囊更长,证明了这些新型微胶囊在持续药物释放方面的能力。

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