自愈水凝胶
乙二醇
材料科学
PEG比率
聚乙二醇
降级(电信)
体内
聚合物
化学工程
高分子化学
计算机科学
复合材料
经济
生物技术
工程类
生物
电信
财务
作者
Gabriel Rodriguez-Rivera,Mykel Green,Vani Shah,Kathleen Leyendecker,Elizabeth Cosgriff‐Hernandez
摘要
Abstract Poly(ethylene glycol) (PEG)‐based hydrogels have gained significant attention in the field of biomedical applications due to their versatility and antifouling properties. Acrylate‐derivatized PEG hydrogels (PEGDA) are some of the most widely studied hydrogels; however, there has been debate around the degradation mechanism and predicting resorption rates. Several factors influence the degradation rate of PEG hydrogels, including backbone and endgroup chemistry, macromer molecular weight, and polymer concentration. In addition to hydrogel parameters, it is necessary to understand the influence of biological and environmental conditions (e.g., pH and temperature) on hydrogel degradation. Rigorous methods for monitoring degradation in both in vitro and in vivo settings are also critical to hydrogel design and development. Herein, we provide guidance on tailoring PEG hydrogel chemistry to achieve target hydrolytic degradation kinetics for both resorbable and biostable applications. A detailed overview of accelerated testing methods and hydrogel degradation characterization is provided to aid researchers in experimental design and interpreting in vitro–in vivo correlations necessary for predicting hydrogel device performance.
科研通智能强力驱动
Strongly Powered by AbleSci AI