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Unidirectional Living Growth of Self Assembled Protein Nanofibrils Revealed by Super-resolution Microscopy

机译:超分辨率显微镜揭示了自组装蛋白纳米纤维的单向活性生长。

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Protein-based nanofibrils are emerging as a promising class of materials that provide unique properties for applications such as biomedical and food engineering. Here, we use atomic force microscopy and stochastic optical reconstruction microscopy imaging to elucidate the growth dynamics, exchange kinetics, and polymerization mechanism for fibrils composed of a de novo designed recombinant triblock protein polymer. This macromolecule features a silk inspired self-assembling central block composed of GAGAGAGH repeats, which are known to fold into a la roll with turns at each histidine and, once folded, to stack, forming a long, ribbon-like structure. We find several properties that allow the growth of patterned protein nanofibrils: the self-assembly takes place on only one side of the growing fibrils by the essentially irreversible addition of protein polymer subunits, and these fibril ends remain reactive indefinitely in the absence of monomer ("living ends"). Exploiting these characteristics, we can grow stable diblock protein nanofibrils by the sequential addition of differently labeled proteins. We establish control over the block length ratio by simply varying monomer feed conditions. Our results demonstrate the use of engineered protein polymers in creating precisely patterned protein nanofibrils and open perspectives for the hierarchical self-assembly of functional biomaterials.
机译:基于蛋白质的纳米原纤维正在成为一类有前途的材料,为生物医学和食品工程等应用提供独特的性能。在这里,我们使用原子力显微镜和随机光学重建显微镜成像来阐明由新设计的重组三嵌段蛋白聚合物组成的原纤维的生长动力学,交换动力学和聚合机理。这种大分子的特征在于由GAGAGAGH重复序列组成的由丝绸启发的自组装中心嵌段,已知该重复嵌段可折叠成1a卷,每个组氨酸都带有拐角,一旦折叠,就会堆叠,形成长条带状结构。我们发现一些特性可以使带图案的蛋白质纳米原纤维生长:通过不可逆地添加蛋白质聚合物亚基,自组装仅在生长的原纤维的一侧发生,并且这些原纤维末端在不存在单体的情况下无限期保持反应性( “生活结束”)。利用这些特性,我们可以通过顺序添加不同标记的蛋白质来生长稳定的二嵌段蛋白质纳米纤维。我们通过简单地改变单体进料条件来建立对嵌段长度比的控制。我们的结果证明了工程蛋白质聚合物在创建精确图案化的蛋白质纳米原纤维中的用途,并为功能性生物材料的分层自组装开辟了前景。

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