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Dependence of Mechanical Properties of Lacewing Egg Sialks on Relative Humidity

机译:卵卵alk的力学性质对相对湿度的依赖性。

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摘要

Silk fibers are well known for their mechanical properties such as strength and toughness and are lightweight, making them an interesting material for a variety of applications. Silk mechanics mainly rely on the secondary structure of the underlying proteins. Lacewing egg stalk silk proteins obtain a cross-β structure with individual β strands aligned perpendicular to the fiber axis. This structure is in contrast with that of silks of spiders or silkworms with β strands parallel to the fiber axis and to that of silks of honeybees with α helices arranged in coiled coils. On the basis of the cross-β structure the mechanical properties of egg stalks are different from those of other silks concerning extensibility, toughness, and bending stiffness. Here we show the influence of relative humidity on the mechanical behavior of lacewing egg stalks and propose a model based on secondary structure changes to explain the differences on a molecular level. At low relative humidity, the stalks rupture at an extension of 3%, whereas at high relative humidity the stalks rupture at 434%. This dramatic increase corresponds to breakage of hydrogen bonds between the β strands and a rearrangement thereof in a parallel-β structure.
机译:蚕丝纤维以其机械性能(例如强度和韧性)而闻名,并且重量轻,使其成为各种应用中令人感兴趣的材料。丝绸力学主要依靠基础蛋白质的二级结构。花边蛋茎丝蛋白获得交叉的β结构,其中各个β链垂直于纤维轴排列。这种结构与具有平行于纤维轴的β股的蜘蛛或蚕丝和带有α螺旋排列成螺旋状的蜜蜂的蚕丝相反。基于交叉β结构,在可延展性,韧性和弯曲刚度方面,蛋杆的机械性能与其他丝的机械性能不同。在这里,我们展示了相对湿度对lace草蛋茎机械行为的影响,并提出了基于二级结构变化的模型来解释分子水平上的差异。在较低的相对湿度下,茎杆断裂伸长率为3%,而在较高的相对湿度下,茎杆断裂伸长率为434%。该急剧增加对应于β链之间的氢键的断裂及其在平行β结构中的重排。

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