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Forced Protein Unfolding Leads to Highly Elastic and Tough Protein Hydrogels

机译:强迫蛋白质展开导致高度弹性和坚韧的蛋白质水凝胶

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摘要

Protein-based hydrogels usually do not exhibit high stretchability or toughness, significantly limiting the scope of their potential biomedical applications. Here we report the engineering of a chemically crosslinked, highly elastic and tough protein hydrogel using a mechanically extremely labile, de novo designed protein that assumes the classical ferredoxin-like fold structure. Due to the low mechanical stability of the ferredoxin-like fold structure, swelling of hydrogels causes a significant fraction of the fold structure domains to unfold. Subsequent collapse and aggregation of unfolded ferredoxin-like fold structure domains leads to intertwining of physically and chemically crosslinked networks, entailing hydrogels with unusual physical and mechanical properties: a negative swelling ratio, high stretchability and toughness. These hydrogels can withstand an average strain of 450% before breaking and show massive energy dissipation. Upon relaxation, refolding of the ferredoxin-like fold structure domains enables the hydrogel to recover its massive hysteresis. This novel biomaterial may expand the scope of hydrogel applications in tissue engineering.
机译:基于蛋白质的水凝胶通常不表现出高拉伸性或韧性,从而极大地限制了其潜在的生物医学应用范围。在这里,我们报告了一种化学上交联的,高弹性和强韧的蛋白质水凝胶的工程化过程,该蛋白质水凝胶使用机械上不稳定的,从头设计的蛋白质,这种蛋白质假定具有经典的铁氧还蛋白样折叠结构。由于铁氧还蛋白样折叠结构的低机械稳定性,水凝胶的溶胀导致大部分折叠结构域展开。随后的未折叠的铁氧还蛋白样折叠结构域的塌陷和聚集导致物理和化学交联网络相互缠绕,使水凝胶具有异常的物理和机械性能:负溶胀比,高拉伸性和韧性。这些水凝胶在断裂之前可以承受450%的平均应变,并显示出大量的能量消散。松弛时,铁氧还蛋白样折叠结构域的重折叠使水凝胶能够恢复其大量的滞后现象。这种新颖的生物材料可能会扩大水凝胶在组织工程中的应用范围。

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