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丝素蛋白微凝胶包埋的聚乙二醇水凝胶的双模式凝胶行为

Dual mode gelation behavior of silk fibroin microgel embedded poly(ethylene glycol) hydrogels.

作者信息

Ryu S, Kim H H, Park Y H, Lin C-C, Um I C, Ki C S

机构信息

Department of Biosystems and Biomaterials Science and Engineering, Seoul National University, Seoul 08826, Republic of Korea.

出版信息

J Mater Chem B. 2016 Jul 14;4(26):4574-4584. doi: 10.1039/c6tb00896h. Epub 2016 Jun 16.

Abstract

Hydrogel formation by more than two cross-linking mechanisms is preferred for the sophisticated manipulation of hydrogel properties. Both chemical and physical crosslinks are often utilized for fabricating stimuli-responsive hydrogels or for compensating the drawbacks of the single crosslinking method. In this study, silk fibroin (SF) microgel embedded poly(ethylene glycol) (PEG) hydrogels were fabricated by dual mode cross-linking based on thiol-ene photo-click chemistry and β-sheet formation of SF. Norbornene-functionalized SF (SF-NB) was incorporated into PEG hydrogels by photo-cross-linking. The equilibrium shear modulus of SF-PEG hybrid hydrogels decreased with increasing SF-NB content. However, the incorporation of SF-NB caused stiffening of SF-PEG hybrid hydrogels gradually over 5 days and the gel modulus was maintained for 2 weeks. In contrast, the modulus of pure PEG hydrogels decreased continuously owing to hydrolytic degradation of ester bonds in the PEGNB macromers. Structural analysis revealed that such a post-gelation stiffening effect was caused by β-sheet transition in SF microgels embedded in the PEG hydrogel matrix. PEG hydrogels incorporated with 4 wt% SF microgels exhibited about 2-fold increase in shear modulus compared with the modulus on day 1 post-gelation. To evaluate the compatibility of these hydrogels as cell culture matrices, the cytotoxicity of the hydrogel was examined using in situ encapsulated A549 cells. SF-PEG hybrid hydrogels showed no apparent cytotoxicity and promoted the proliferation of encapsulated A549 cells even at a higher gel modulus compared with cells in pure PEG hydrogels. These results suggest that SF-PEG hybrid hydrogels fabricated by dual mode crosslinking serve as good candidates for three-dimensional cell culture requiring temporal control of hydrogel stiffness.

摘要

通过两种以上交联机制形成水凝胶,更有利于对水凝胶性质进行精细调控。化学交联和物理交联常常被用于制备刺激响应性水凝胶或弥补单一交联方法的缺点。在本研究中,基于硫醇-烯光点击化学和丝素蛋白(SF)的β-折叠形成,通过双模式交联制备了丝素蛋白(SF)微凝胶包埋的聚乙二醇(PEG)水凝胶。通过光交联将降冰片烯功能化的SF(SF-NB)引入PEG水凝胶中。SF-PEG杂化水凝胶的平衡剪切模量随SF-NB含量的增加而降低。然而,SF-NB的引入使SF-PEG杂化水凝胶在5天内逐渐变硬,且凝胶模量维持了2周。相比之下,由于PEGNB大分子单体中酯键的水解降解,纯PEG水凝胶的模量持续下降。结构分析表明,这种凝胶后变硬效应是由包埋在PEG水凝胶基质中的SF微凝胶中的β-折叠转变引起的。与凝胶后第1天的模量相比,掺入4 wt% SF微凝胶的PEG水凝胶的剪切模量提高了约2倍。为了评估这些水凝胶作为细胞培养基质的相容性,使用原位包封的A549细胞检测了水凝胶的细胞毒性。SF-PEG杂化水凝胶没有明显的细胞毒性,即使在比纯PEG水凝胶中的细胞更高的凝胶模量下,也能促进包封的A549细胞的增殖。这些结果表明,通过双模式交联制备的SF-PEG杂化水凝胶是需要对水凝胶硬度进行时间控制的三维细胞培养的良好候选材料。

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