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Bioprospecting Finds the Toughest Biological Material: Extraordinary Silk from a Giant Riverine Orb Spider

机译:生物勘探发现最坚韧的生物材料:来自巨型河滨天体蜘蛛的非凡丝绸

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摘要

Background\udCombining high strength and elasticity, spider silks are exceptionally tough, i.e., able to absorb massive kinetic energy before breaking. Spider silk is therefore a model polymer for development of high performance biomimetic fibers. There are over 41.000 described species of spiders, most spinning multiple types of silk. Thus we have available some 200.000+ unique silks that may cover an amazing breadth of material properties. To date, however, silks from only a few tens of species have been characterized, most chosen haphazardly as model organisms (Nephila) or simply from researchers' backyards. Are we limited to ‘blindly fishing’ in efforts to discover extraordinary silks? Or, could scientists use ecology to predict which species are likely to spin silks exhibiting exceptional performance properties?\ud\udMethodology\udWe examined the biomechanical properties of silk produced by the remarkable Malagasy ‘Darwin's bark spider’ (Caerostris darwini), which we predicted would produce exceptional silk based upon its amazing web. The spider constructs its giant orb web (up to 2.8 m2) suspended above streams, rivers, and lakes. It attaches the web to substrates on each riverbank by anchor threads as long as 25 meters. Dragline silk from both Caerostris webs and forcibly pulled silk, exhibits an extraordinary combination of high tensile strength and elasticity previously unknown for spider silk. The toughness of forcibly silked fibers averages 350 MJ/m3, with some samples reaching 520 MJ/m3. Thus, C. darwini silk is more than twice tougher than any previously described silk, and over 10 times better than Kevlar®. Caerostris capture spiral silk is similarly exceptionally tough.\ud\udConclusions\udCaerostris darwini produces the toughest known biomaterial. We hypothesize that this extraordinary toughness coevolved with the unusual ecology and web architecture of these spiders, decreasing the likelihood of bridgelines breaking and collapsing the web into the river. This hypothesis predicts that rapid change in material properties of silk co-occurred with ecological shifts within the genus, and can thus be tested by combining material science, behavioral observations, and phylogenetics. Our findings highlight the potential benefits of natural history–informed bioprospecting to discover silks, as well as other materials, with novel and exceptional properties to serve as models in biomimicry.
机译:背景\蜘蛛丝结合了高强度和弹性,特别坚韧,即能够在断裂前吸收大量动能。因此,蜘蛛丝是用于开发高性能仿生纤维的模型聚合物。有超过41.000种蜘蛛被描述,其中大多数纺丝是多种类型的。因此,我们提供了大约200.000+种独特的丝绸,这些丝绸可能涵盖了惊人的材料性能范围。然而,迄今为止,仅几十种物种的丝绸就已被鉴定出来,大多数是偶然地被选作模型生物(Nephila)或只是从研究人员的后院中选出的。为了发现非凡的丝绸,我们是否仅限于“盲目钓鱼”?还是科学家可以利用生态学来预测哪些物种可能纺出表现出卓越性能的丝绸?\ ud \ ud方法论\ ud我们研究了由马达加斯加人“达尔文树皮蜘蛛”(Caerostris darwini)生产的丝绸的生物力学特性,我们对此进行了预测将基于其惊人的网络生产出卓越的丝绸。蜘蛛构造了悬浮在溪流,河流和湖泊上方的巨型球网(最大2.8平方米)。它通过长达25米的锚定线将网附着到每个河岸的底物上。来自Caerostris纤维网和强力拉制丝的Dragline丝展现出高拉伸强度和弹性的非凡组合,这是蜘蛛丝以前所不知道的。强力丝纤维的韧度平均为350 MJ / m3,有些样品达到520 MJ / m3。因此,达尔文梭菌丝比任何先前描述的丝都坚硬两倍以上,并且比凯夫拉尔强十倍以上。 Caerostris捕获螺旋丝同样坚韧。\ ud \ ud结论\ udCaerostris darwini生产已知最坚韧的生物材料。我们假设这种非凡的韧性与这些蜘蛛的异常生态学和网状结构共同发展,从而降低了桥梁断裂和将网状结构塌陷到河中的可能性。该假说预言了蚕丝材料特性的快速变化与属内的生态变化同时发生,因此可以通过结合材料科学,行为观察和系统发育学进行检验。我们的发现强调了自然历史的潜在好处-进行生物勘探以发现丝绸以及其他材料,它们具有新颖而卓越的特性,可以作为仿生模型。

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