Kurland Nicholas E, Ragland Robert B, Zhang Aolin, Moustafa Mahmoud E, Kundu Subhas C, Yadavalli Vamsi K
Department of Chemical and Life Science Engineering, Virginia Commonwealth University, Richmond VA 23284, USA.
Department of Biotechnology, Indian Institute of Technology, Kharagpur 721302, India.
Int J Biol Macromol. 2014 Sep;70:565-71. doi: 10.1016/j.ijbiomac.2014.07.036. Epub 2014 Jul 27.
Poly(amino acid) hydrogels have attracted a great deal of attention as biodegradable biomaterials that can limit products of synthetic polymer degradation. Here we report on a stimuli-responsive, porous, composite biomaterial based on the protein templating of the poly(amino acid) hydrogel from poly(aspartic acid) with the silk protein sericin. This low-cost, biocompatible and biodegradable hydrogel demonstrates a greatly increased porosity and improvement in volumetric swelling over networks formed from pure poly(aspartic acid). The swelling capacity measured over a range of pH values surrounding physiological pH 7.0 demonstrates a linear profile, in which hydrogel volume and mass increase to a maximum, with an increase as a function of higher sericin content. In comparison to pure poly(aspartic acid), this demonstrates a nearly 3-fold increase in retention volume at basic pH. The increase in swelling is also demonstrated by the increase in porosity and internal micro-architecture of the hydrogel networks. The biomaterial is then shown to perform well as a scaffold for cells with high mechanical strength and integrity. This protein- and homo poly(amino acid)-based super-swelling hydrogel has applications in drug delivery and tissue engineering as an economical and environmentally friendly biomaterial, in addition to ensuring the species incorporated maintain their biocompatibility during processing.
聚氨基酸水凝胶作为一种可生物降解的生物材料,能够限制合成聚合物降解产物,因此受到了广泛关注。在此,我们报道了一种基于聚天冬氨酸与丝蛋白丝胶蛋白进行蛋白质模板化的刺激响应性多孔复合生物材料。这种低成本、生物相容性好且可生物降解的水凝胶与由纯聚天冬氨酸形成的网络相比,孔隙率大大增加,体积溶胀性能也有所改善。在生理pH值7.0附近的一系列pH值范围内测量的溶胀能力呈现出线性特征,即水凝胶体积和质量随着丝胶蛋白含量的增加而增加,直至达到最大值。与纯聚天冬氨酸相比,在碱性pH值下,其保留体积增加了近3倍。水凝胶网络孔隙率和内部微观结构的增加也表明了溶胀的增加。然后,该生物材料被证明作为具有高机械强度和完整性的细胞支架表现良好。这种基于蛋白质和均聚氨基酸的超溶胀水凝胶除了能确保所掺入的物质在加工过程中保持其生物相容性外,还作为一种经济环保的生物材料在药物递送和组织工程中具有应用价值。