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可控纤维化增强基因工程橡胶状蛋白水凝胶。

Controllable Fibrillization Reinforces Genetically Engineered Rubberlike Protein Hydrogels.

机构信息

State Key Laboratory of Microbial Metabolism, Joint International Research Laboratory of Metabolic & Developmental Sciences, and School of Life Sciences and Biotechnology, Shanghai Jiao Tong University, 800 Dongchuan Road, Shanghai 200240, People's Republic of China.

出版信息

Biomacromolecules. 2021 Feb 8;22(2):961-970. doi: 10.1021/acs.biomac.0c01653. Epub 2021 Jan 17.

Abstract

Rubberlike protein hydrogels are unique in their remarkable stretchability and resilience but are usually low in strength due to the largely unstructured nature of the constitutive protein chains, which limits their applications. Thus, reinforcing protein hydrogels while retaining their rubberlike properties is of great interest and has remained difficult to achieve. Here, we propose a fibrillization strategy to reinforce hydrogels from engineered protein copolymers with photo-cross-linkable resilin-like blocks and fibrillizable silklike blocks. First, the designer copolymers with an increased ratio of the silk to resilin blocks were photochemically cross-linked into rubberlike hydrogels with reinforced mechanical properties. The increased silk-to-resilin ratio also enabled self-assembly of the resulting copolymers into fibrils in a time-dependent manner. This allowed controllable fibrillization of the copolymer solutions at the supramolecular level for subsequent photo-cross-linking into reinforced hydrogels. Alternatively, the as-prepared chemically cross-linked hydrogels could be reinforced at the material level by inducing fibrillization of the constitutive protein chains. Finally, we demonstrated the advantage of reinforcing these hydrogels for use as piezoresistive sensors to achieve an expanded pressure detection range. We anticipate that this strategy may provide intriguing opportunities to generate robust rubberlike biomaterials for broad applications.

摘要

橡胶状蛋白水凝胶具有显著的拉伸性和弹性,但由于组成蛋白链的结构大多不规整,其强度通常较低,限制了它们的应用。因此,在保持橡胶状特性的同时增强蛋白水凝胶具有很大的研究意义,但一直难以实现。在这里,我们提出了一种纤化策略,用于增强由具有光交联的类弹性蛋白样嵌段和可纤维化丝素样嵌段的工程蛋白共聚物制备的水凝胶。首先,通过光化学交联具有增加的丝素与弹性蛋白比例的设计共聚物,得到机械性能增强的橡胶状水凝胶。增加的丝素与弹性蛋白的比例也使共聚物在时间依赖性的方式下自组装成纤维。这允许在超分子水平上对共聚物溶液进行可控的纤化,以便随后进行光交联以形成增强的水凝胶。或者,可以通过诱导组成蛋白链的纤化在材料水平上增强预制备的化学交联水凝胶。最后,我们展示了增强这些水凝胶作为压阻传感器的优势,以实现扩展的压力检测范围。我们预计,这种策略可能为生成用于广泛应用的坚固橡胶状生物材料提供有趣的机会。

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