Department of Chemical and Biochemical Engineering, University of Maryland, Baltimore County, 1000 Hilltop Circle, ECS 314, Baltimore, Maryland 21250, USA.
Biomacromolecules. 2010 May 10;11(5):1348-57. doi: 10.1021/bm100137q.
The objective of this work was to create 3D hydrogel matrices with defined mechanical properties as well as tunable degradability for use in applications involving protein delivery and cell encapsulation. Therefore, we report the synthesis and characterization of a novel hydrolytically degradable poly(ethylene glycol) (PEG) hydrogel composed of PEG vinyl sulfone (PEG-VS) cross-linked with PEG-diester-dithiol. Unlike previously reported degradable PEG-based hydrogels, these materials are homogeneous in structure, fully hydrophilic, and have highly specific cross-linking chemistry. We characterized hydrogel degradation and associated trends in mechanical properties, that is, storage modulus (G'), swelling ratio (Q(M)), and mesh size (xi). Degradation time and the monitored mechanical properties of the hydrogel correlated with cross-linker molecular weight, cross-linker functionality, and total polymer density; these properties changed predictably as degradation proceeded (G' decreased, whereas Q(M) and xi increased) until the gels reached complete degradation. Balb/3T3 fibroblast adhesion and proliferation within the 3D hydrogel matrices were also verified. In sum, these unique properties indicate that the reported degradable PEG hydrogels are well poised for specific applications in protein and cell delivery to repair soft tissue.
这项工作的目的是制备具有特定机械性能和可调控降解性的 3D 水凝胶基质,用于涉及蛋白质输送和细胞包封的应用。因此,我们报告了一种新型的可水解降解的聚乙二醇(PEG)水凝胶的合成与表征,该水凝胶由 PEG 乙烯砜(PEG-VS)与 PEG-二酯-二硫醇交联而成。与之前报道的可降解 PEG 基水凝胶不同,这些材料结构均匀、完全亲水,且具有高度特异的交联化学性质。我们对水凝胶的降解及其相关机械性能(即储能模量(G')、溶胀比(Q(M))和网格尺寸(xi))进行了表征。水凝胶的降解时间和监测到的机械性能与交联剂分子量、交联剂官能度和总聚合物密度有关;随着降解的进行,这些性质可预测地发生变化(G'降低,而 Q(M)和 xi 增加),直到凝胶完全降解。Balb/3T3 成纤维细胞在 3D 水凝胶基质中的黏附和增殖也得到了验证。总之,这些独特的性质表明,所报道的可降解 PEG 水凝胶非常适合于蛋白质和细胞输送以修复软组织的特定应用。