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由聚乙烯醇-铁(III)络合物制成的粘弹性水凝胶。

Viscoelastic hydrogels from poly(vinyl alcohol)-Fe(iii) complex.

作者信息

Mahanta Narahari, Teow Yiwei, Valiyaveettil Suresh

机构信息

Department of Chemistry, National University of Singapore, 3 Science Drive 3, Singapore 117543, Singapore.

出版信息

Biomater Sci. 2013 May 2;1(5):519-527. doi: 10.1039/c3bm00167a. Epub 2013 Feb 25.

Abstract

Hydrogels are three dimensional scaffolds of hydrophilic polymers with inter-connected water channels. In this investigation, an interesting approach for the fabrication of a highly viscoelastic hydrogel derived from a polyvinyl alcohol (PVA) based macromer is reported. PVA was crosslinked using Fe ions under basic conditions to obtain a stable hydrogel with a highly porous network structure. The swelling ratio of the designed hydrogels was evaluated and correlated to the network structure of the metal coordinated crosslinked macromers. Compressive modulus and dynamic viscoelastic measurements were carried out using a dynamic mechanical analyzer and no significant changes in storage modulus were observed by increasing the temperature up to 45 °C. A creep study revealed that the elastic recovery was enhanced with an increase in the degree of crosslinking. The effect of crosslinking influenced properties such as the glass transition, melting point and melting enthalpy of the crosslinked network. The cytocompatibility of the gels was studied using human lung fibroblasts (IMR-90) and no toxic effects or significant cell attachments were observed on the surface of the gel after 5 days. The designed hydrogels may be useful for biomedical procedures which require highly viscoelastic, biocompatible, thermally and mechanically stable biomaterials.

摘要

水凝胶是具有相互连接的水通道的亲水性聚合物三维支架。在本研究中,报道了一种由基于聚乙烯醇(PVA)的大分子单体制备高粘弹性水凝胶的有趣方法。在碱性条件下,使用铁离子使PVA交联,以获得具有高度多孔网络结构的稳定水凝胶。对设计的水凝胶的溶胀率进行了评估,并将其与金属配位交联大分子单体的网络结构相关联。使用动态力学分析仪进行压缩模量和动态粘弹性测量,在温度升高至45°C时,未观察到储能模量有显著变化。蠕变研究表明,随着交联度的增加,弹性恢复增强。交联的影响涉及交联网络的玻璃化转变、熔点和熔化焓等性质。使用人肺成纤维细胞(IMR-90)研究了凝胶的细胞相容性,5天后在凝胶表面未观察到毒性作用或显著的细胞附着。设计的水凝胶可能对需要高粘弹性、生物相容性、热稳定性和机械稳定性生物材料的生物医学程序有用。

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