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首页> 外文期刊>The Journal of Experimental Biology >Double-network gels and the toughness of terrestrial slug glue
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Double-network gels and the toughness of terrestrial slug glue

机译:双网凝胶和陆地弹头胶的韧性

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摘要

The terrestrial slug Arion subfuscus produces a defensive secretion that is sticky and tough, despite being a dilute gel. It is unusual in having high stiffness for a gel, yet retaining the high extensibility typical of mucus. In tensile tests, it sustains an average peak stress of 101 kPa, and fails at an average strain of 9.5. This gives the gel toughness; it requires much greater strain energy to fracture than most gels. This toughness may arise from a double-network type mechanism. In this mechanism, two separate, interpenetrating networks of polymers with different properties combine to give toughness that can be several orders of magnitude greater than either network individually. Native gel electrophoresis suggests that A. subfuscus glue consists of two networks: a network of negatively charged proteins ranging in M-r from 40x10(3) to 220x10(3) that can be dissociated by hydroxylamine and a network of heparan sulfate-like proteoglycans. The two networks are not tightly linked, though proteins of M-r 40x10(3) and 165x10(3) may associate with the carbohydrates. Targeted disruption of either network separately, using enzymatic hydrolysis, disulfide bond breakage or imine bond disruption completely disrupted the glue, resulting in no measurable toughness. Thus, the two networks separately provide little toughness, but together they work synergistically to create a tough material, as predicted in the double-network mechanism.
机译:尽管是稀凝胶,但陆生孢子Arion亚付丝产生的防御分泌物既粘又坚韧。具有凝胶的高刚度却保留了粘液典型的高延展性是不寻常的。在拉伸试验中,它承受的平均峰值应力为101 kPa,在平均应变为9.5时失效。这给出了凝胶韧性;与大多数凝胶相比,它需要更大的应变能才能断裂。这种韧性可能来自双网络类型的机制。在这种机制下,具有不同性能的两个单独的互穿聚合物网络相结合,可提供比单个网络大几个数量级的韧性。天然凝胶电泳表明,A。subfuscus胶由两个网络组成:一个带负电荷的蛋白质网络,其M-r范围从40x10(3)到220x10(3),可以被羟胺解离,以及一个硫酸乙酰肝素样蛋白聚糖网络。尽管M-r 40x10(3)和165x10(3)的蛋白质可能与碳水化合物结合,但这两个网络并没有紧密相连。使用酶促水解,二硫键断裂或亚胺键断裂分别破坏两个网络的目标是完全破坏了胶水,因此没有可测量的韧性。因此,两个网络分别提供了很少的韧性,但是如双网络机制中所预测的那样,它们一起协同工作以创建坚韧的材料。

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