Department of Life Sciences, University of Trieste, via L. Giorgieri, 1, 34127 Trieste, Italy.
Institute for Polymers, Composites and Biomaterials (IPCB-CNR), Via Campi Flegrei 34, 80078 Pozzuoli, NA, Italy.
Biomacromolecules. 2023 Nov 13;24(11):5277-5289. doi: 10.1021/acs.biomac.3c00782. Epub 2023 Oct 27.
Genetic engineering allows fine-tuning and controlling protein properties, thus exploiting the new derivatives to obtain novel materials and systems with improved capacity to actively interact with biological systems. The elastin-like polypeptides are tunable recombinant biopolymers that have proven to be ideal candidates for realizing bioactive interfaces that can interact with biological systems. They are characterized by a thermoresponsive behavior that is strictly related to their peculiar amino acid sequence. We describe here the rational design of a new biopolymer inspired by elastin and the comparison of its physicochemical properties with those of another already characterized member of the same protein class. To assess the cytocompatibility, the behavior of cells of different origins toward these components was evaluated. Our study shows that the biomimetic strategy adopted to design new elastin-based recombinant polypeptides represents a versatile and valuable tool for the development of protein-based materials with improved properties and advanced functionality.
基因工程可以精细调整和控制蛋白质的性质,从而利用新的衍生物来获得具有改进的与生物系统主动相互作用能力的新型材料和系统。弹性蛋白样多肽是可调节的重组生物聚合物,已被证明是实现能够与生物系统相互作用的生物活性界面的理想候选物。它们的特点是热响应行为,这与其独特的氨基酸序列密切相关。在这里,我们描述了一种受弹性蛋白启发的新型生物聚合物的合理设计,并比较了其与同一蛋白质类别的另一种已有特征成员的物理化学性质。为了评估细胞相容性,评估了不同来源的细胞对这些成分的反应。我们的研究表明,用于设计新的基于弹性蛋白的重组多肽的仿生策略代表了一种通用且有价值的工具,可用于开发具有改进性能和先进功能的基于蛋白质的材料。