National Engineering Laboratory for Modern Silk, College of Textile and Clothing Engineering, Soochow University, Suzhou 215123, People's Republic of China.
Department of Chemical & Life Science Engineering, Virginia Commonwealth University, VA 23284-3028, USA.
Int J Biol Macromol. 2018 Jan;106:48-56. doi: 10.1016/j.ijbiomac.2017.07.178. Epub 2017 Aug 1.
In this paper, a swelling-modified silk fibroin (SF) microneedle for transdermal drug delivery is presented. The microneedles undergo a phase transition from a dried and rigid state to a semi-solid, acerose hydrogel state with a controlled 3-dimensional (3D) porous network structure. Different micromolecular reagents have been studied for mixing with aqueous silk fibroin to endow a swellable and insoluble capacity to the SF. The aqueous SF composite is poured on a polydimethylsiloxane (PDMS) mold with arranged micropores on its surface to fabricate SF microneedles with high fidelity and mechanical robustness. The results demonstrate that 2-ethoxyethanol (ECS) modified SF microneedles can easily pierce porcine skin with a depth of ∼200μm in vitro, and transform into semi-solid hydrogels with 50-700nm porous network inside. These swelling-modified microneedles can accomplish a significantly enhanced transdermal drug release capacity in proportion to their swelling characteristics. The better swelling capacity of the microneedles produces larger pores, resulting in higher transdermal drug release kinetics. There is also a relationship between swollen pore dimensions and the molecular weights of encapsulated therapeutics. The controllable properties of these SF microneedles coupled with their high biocompatibility, render swell-to-release ECS/SF composites as viable transdermal delivery devices.
本文提出了一种用于经皮给药的可溶胀丝素蛋白(SF)微针。微针经历了从干燥和刚性状态到半固态、尖锐水凝胶状态的相变,具有可控的三维(3D)多孔网络结构。已经研究了不同的微分子试剂与丝素蛋白水溶液混合,赋予 SF 可溶胀和不溶性的能力。将丝素蛋白复合水溶液浇铸在聚二甲基硅氧烷(PDMS)模具上,模具表面具有排列整齐的微孔,以制造具有高保真度和机械鲁棒性的 SF 微针。结果表明,2-乙氧基乙醇(ECS)修饰的 SF 微针可以很容易地刺穿体外约 200μm 深的猪皮,并转化为内部具有 50-700nm 多孔网络的半固态水凝胶。这些溶胀修饰的微针可以根据其溶胀特性显著增强经皮药物释放能力。微针的溶胀能力越强,产生的孔隙就越大,经皮药物释放动力学就越高。封装治疗药物的溶胀孔尺寸与分子量之间也存在关系。这些 SF 微针的可控性质及其高度的生物相容性,使溶胀释放 ECS/SF 复合材料成为可行的经皮给药装置。