Universidade da Coruña, Grupo de Polímeros, Departamento de Física y Ciencias de la Tierra, Escuela Universitaria Politécnica, Serantes, Avda. 19 de Febrero s/n, 15471 Ferrol, Spain.
Centro de Investigación de Polímeros Avanzados, Edificio Laboratorio CIPA, Av. Collao 1202, Concepcion, Chile.
Mater Sci Eng C Mater Biol Appl. 2019 Mar;96:583-590. doi: 10.1016/j.msec.2018.11.071. Epub 2018 Nov 29.
Composite hydrogels were obtained by the entrapment of chitosan, pectin or κ-carrageenan within methacrylate-based hydrogels to improve their swelling and the mechanical properties. The results indicated that the water uptake (WU) of κ-carrageenan and chitosan hydrogels were until 3.5 and 2.2 times higher than the WU of the synthetic hydrogel, respectively. The surface morphologies of the hydrogels showed that the pectin and κ-carrageenan favors the formation of larger and more defined pores. The mechanical properties indicated that the pectin increased slightly the mechanical properties and the κ-carrageenan improves the mechanical properties of the synthetic hydrogel reaching up 400 N of compression load. Therefore, the entrapment of κ-carrageenan within synthetic hydrogels improved both the swelling and the mechanical properties. The biocompatibility of the hydrogels was evaluated with in vitro cytotoxicity assays and the results indicated that they could be considered as candidates for biomedical use.
复合水凝胶是通过将壳聚糖、果胶或κ-卡拉胶包埋在甲基丙烯酸盐水凝胶中来获得的,以提高其溶胀性和机械性能。结果表明,κ-卡拉胶和壳聚糖水凝胶的吸水率(WU)分别比合成水凝胶的吸水率高 3.5 倍和 2.2 倍。水凝胶的表面形貌表明,果胶和κ-卡拉胶有利于形成更大、更规则的孔。机械性能表明,果胶略微提高了机械性能,而κ-卡拉胶提高了合成水凝胶的机械性能,达到了 400N 的压缩载荷。因此,κ-卡拉胶的包埋提高了合成水凝胶的溶胀性和机械性能。水凝胶的生物相容性通过体外细胞毒性试验进行评估,结果表明它们可被视为生物医学应用的候选材料。