自愈水凝胶
胶粘剂
膜
化学
材料科学
高分子化学
纳米技术
生物化学
图层(电子)
作者
Shengjia Chen,Xiangshu Guo,Yanyu Yang,Junjie Deng,Ting Xu,Zhechen Yuan,Hao Xue,Longxing Niu,Rong Wang,Yi Shen
标识
DOI:10.1016/j.mtbio.2024.101212
摘要
The tympanic membrane (TM) is constantly in a state of vibrating. However, there is currently a lack of drug-delivery scaffolds suitable for the dynamic environment of TM perforation. In this study, a mechano-responsive tough hydrogel was developed. It consists of basic fibroblast growth factor (bFGF)-loaded sodium alginate (SA) microspheres, polysulfobetaine methacrylate (polySBMA), and gelatin methacrylate (GelMA). This hydrogel was designed to serve as a TM scaffold to promote perforation healing under dynamic conditions. bFGF was encapsulated in SA microspheres, which were then incorporated into polySBMA-GelMA hydrogels through photo-initiated free radical polymerization. The mechanical properties, tissue adhesiveness, swelling properties, and degradation of the hydrogels were evaluated before and after microsphere incorporation. It was observed that incorporating bFGF-loaded SA microspheres did not significantly impact the adhesion and degradation mechanisms of the hydrogel. The compressive strength and tensile strength of the microsphere-incorporated hydrogel were up to 6.6 MPa and 64.1 kPa, respectively, suitable for a TM scaffold. The release behavior of bFGF from the hydrogel could be controlled by vibration stimulation without significantly affecting the hydrogel's mechanical properties, indicating a mechano-responsive nature of the hydrogel. The in vitro cytotoxicity assay demonstrated that the hydrogels showed no cytotoxic effects. Moreover, cell culture assays demonstrated that vibration stimulation could enhance the release of bFGF, significantly promoting cell proliferation and migration. The results demonstrate the significant potential of the mechano-responsive hydrogel as a scaffold for repairing TM perforations. • Tough and adhesive microsphere-incorporated pSBMA-GelMA hydrogel was constructed. • BFGF release from the hydrogels was controlled in a mechano-responsive manner. • The hydrogels maintained good mechanical properties in dynamic environments. • It promoted cell proliferation and migration by mechano-responsive release of bFGF. • The hydrogels showed great potential for repairing tympanic membrane perforations.
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