Department of Chemical Engineering, Technion-Israel Institute of Technology, Haifa 32000, Israel.
Langmuir. 2011 Jun 7;27(11):6977-86. doi: 10.1021/la104695m. Epub 2011 May 4.
Nanostructured hydrogels based on "smart" polymer conjugates of poloxamers and protein molecules were developed in order to form stimulus-responsive materials with bioactive properties for 3-D cell culture. Functionalized Pluronic F127 was covalently attached to a fibrinopeptide backbone and cross-linked into a structurally versatile and mechanically stable polymer network endowed with bioactivity and temperature-responsive structural features. Small angle X-ray scattering and transmission electron microscopy combined with rheology were used to characterize the structural and mechanical features of this biosynthetic conjugate, both in solution and in hydrogel form. The temperature at which the chemical cross-linking of F127-fibrinopeptide conjugates was initiated had a profound influence on the mechanical properties of the thermo-responsive hydrogel. The analysis of the scattering data revealed modification in the structure of the protein backbone resulting from increases in ambient temperature, whereas the structure of the polymer was not affected by ambient temperature. The hydrogel cross-linking temperature also had a major influence on the modulus of the hydrogel, which was rationally correlated to the molecular structure of the polymer network. The hydrogel structure exhibited a small mesh size when cross-linked at low temperatures and a larger mesh size when cross-linked at higher temperatures. The mesh size was nicely correlated to the mechanical properties of the hydrogels at the respective cross-linking temperatures. The schematic charts that model this material's behavior help to illustrate the relationship that exists between the molecular structure, the cross-linking temperature, and the temperature-responsive features for this class of protein-polymer conjugates. The precise control over structural and mechanical properties that can be achieved with this bioactive hydrogel material is essential in designing a tissue-engineering scaffold for clinical applications.
为了形成具有生物活性的 3D 细胞培养刺激响应材料,开发了基于聚氧丙烯醚和蛋白质分子“智能”聚合物缀合物的纳米结构水凝胶。功能性 Pluronic F127 通过共价键连接到纤维蛋白肽骨架上,并交联成具有生物活性和温度响应结构特征的结构多功能和机械稳定的聚合物网络。小角 X 射线散射和透射电子显微镜结合流变学用于表征这种生物合成缀合物的结构和机械特性,无论是在溶液中还是在水凝胶形式中。引发 F127-纤维蛋白肽缀合物化学交联的温度对热响应水凝胶的机械性能有深远的影响。散射数据分析表明,环境温度的升高导致蛋白质主链结构的修饰,而聚合物的结构不受环境温度的影响。水凝胶交联温度对水凝胶的模量也有重大影响,这与聚合物网络的分子结构合理相关。水凝胶结构在低温交联时表现出较小的网格尺寸,在高温交联时表现出较大的网格尺寸。网格尺寸与相应交联温度下水凝胶的力学性能很好地相关。该材料行为的示意图有助于说明分子结构、交联温度和这类蛋白质-聚合物缀合物的温度响应特征之间存在的关系。这种生物活性水凝胶材料在结构和机械性能方面的精确控制对于设计用于临床应用的组织工程支架至关重要。