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Molecular engineering of metal coordination interactions for strong, tough, and fast-recovery hydrogels

机译:用于强,坚韧和快速恢复水凝胶的金属配位相互作用的分子工程

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Many load-bearing tissues, such as muscles and cartilages, show high elasticity, toughness, and fast recovery. However, combining these mechanical properties in the same synthetic biomaterials is fundamentally challenging. Here, we show that strong, tough, and fast-recovery hydrogels can be engineered using cross-linkers involving cooperative dynamic interactions. We designed a histidine-rich decapeptide containing two tandem zinc binding motifs. Because of allosteric structural change-induced cooperative binding, this decapeptide had a higher thermodynamic stability, stronger binding strength, and faster binding rate than single binding motifs or isolated ligands. The engineered hybrid network hydrogels containing the peptide-zinc complex exhibit a break stress of ~3.0 MPa, toughness of ~4.0 MJ msup?3/sup, and fast recovery in seconds. We expect that they can function effectively as scaffolds for load-bearing tissue engineering and as building blocks for soft robotics. Our results provide a general route to tune the mechanical and dynamic properties of hydrogels at the molecular level.
机译:许多承载组织,如肌肉和软骨,显示出高弹性,韧性和快速恢复。然而,在相同的合成生物材料中结合这些机械性能从根本上具有挑战性。在这里,我们表明,可以使用涉及协作动态相互作用的交联剂来设计强大,坚韧和快速恢复的水凝胶。我们设计了一种含有两种串联锌结合基序的组氨酸的浓汤。由于变构结构变化诱导的合作结合,该蒸馏肽具有较高的热力学稳定性,较强的结合强度,并且比单个结合基序或分离的配体更快的结合速率。含有肽 - 锌复合物的工程化杂化网络水凝胶表现出〜3.0MPa的断裂胁迫,韧性为4.0mJ m 3 ,并在几秒钟内快速恢复。我们预计它们可以有效地运作作为承载组织工程的脚手架,作为软机器人的构建块。我们的结果提供了一般的途径来调整分子水平的水凝胶的机械和动态性质。

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