壳聚糖
分散性
生物相容性
化学工程
超声
化学
聚合物
多糖
离子强度
粒径
材料科学
高分子化学
有机化学
色谱法
水溶液
工程类
作者
Claudia Elizabeth Ruiz-Dávila,Karla Ivón Solís-Andrade,Miguel Olvera‐Sosa,Gabriela Palestino,Sergio Rosales‐Mendoza
标识
DOI:10.1016/j.ijbiomac.2023.125655
摘要
Advanced materials used in the biomedicine field comprises a diverse group of organic molecules, including polymers, polysaccharides, and proteins. A significant trend in this area is the design of new micro/nano gels whose small size, physical stability, biocompatibility, and bioactivity could lead to new applications. Herein a new synthesis route is described to obtain core-shell microgels based on chitosan and Porphyridium exopolysaccharides (EPS) crosslinked with sodium tripolyphosphate (TPP). First, the synthesis of EPS-chitosan gels through ionic interactions was explored, leading to the formation of unstable gels. Alternatively, the use of TTP as crosslinker agent led to stable core-shell structures. The influence of reaction temperature, sonication time, and exopolysaccharide concentration, pH and TPP concentration were determined as a function of particle size and polydispersity index (PDI). The obtained EPS-chitosan gels were characterized by TEM, TGA, and FTIR; followed by the assessment of protein load capacity, stability upon freezing, cytotoxicity, and mucoadhesivity. Experimentation revealed that the core-shell particles size ranges 100-300 nm, have a 52 % loading capacity for BSA and a < 90 % mucoadhesivity, and no toxic effects in mammalian cell cultures. The potential application of the obtained microgels in the biomedical field is discussed.
科研通智能强力驱动
Strongly Powered by AbleSci AI