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揭示蜘蛛丝纤维纳米级特征的生物多样性。

Unravelling the biodiversity of nanoscale signatures of spider silk fibres.

机构信息

Embrapa Genetic Resources and Biotechnology, PBI, Parque Estação Biológica Final W5 Norte, Brasilia 70770-917, Brazil.

出版信息

Nat Commun. 2013;4:3014. doi: 10.1038/ncomms4014.

Abstract

Living organisms are masters at designing outstanding self-assembled nanostructures through a hierarchical organization of modular proteins. Protein-based biopolymers improved and selected by the driving forces of molecular evolution are among the most impressive archetypes of nanomaterials. One of these biomacromolecules is the myriad of compound fibroins of spider silks, which combine surprisingly high tensile strength with great elasticity. However, no consensus on the nano-organization of spider silk fibres has been reached. Here we explore the biodiversity of spider silk fibres, focusing on nanoscale characterization with high-resolution atomic force microscopy. Our results reveal an evolution of the nanoroughness, nanostiffness, nanoviscoelastic, nanotribological and nanoelectric organization of microfibres, even when they share similar sizes and shapes. These features are related to unique aspects of their molecular structures. The results show that combined nanoscale analyses of spider silks may enable the screening of appropriate motifs for bioengineering synthetic fibres from recombinant proteins.

摘要

生物体通过模块化蛋白质的层次组织,巧妙地设计出杰出的自组装纳米结构。在分子进化的驱动力下得到改善和选择的基于蛋白质的生物聚合物是最令人印象深刻的纳米材料原型之一。这些生物大分子之一是蜘蛛丝的众多复合丝纤维,它们结合了惊人的拉伸强度和极好的弹性。然而,对于蜘蛛丝纤维的纳米组织,尚未达成共识。在这里,我们探索了蜘蛛丝纤维的生物多样性,重点是使用高分辨率原子力显微镜进行纳米尺度的表征。我们的结果揭示了微纤维纳米粗糙度、纳米硬度、纳米黏弹性、纳米摩擦学和纳米电学组织的演变,即使它们具有相似的大小和形状。这些特征与它们分子结构的独特方面有关。结果表明,对蜘蛛丝进行综合纳米分析可能有助于筛选合适的基序,用于从重组蛋白生物工程合成纤维。

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