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蛇(Naja atra)和龟(Ocadia sinensis)蛋壳的层次结构和力学性能。

Hierarchical structure and mechanical properties of snake (Naja atra) and turtle (Ocadia sinensis) eggshells.

机构信息

Department of Materials Science and Engineering, National Tsing Hua University, 101, Sec. 2, Kuang-Fu Rd., Hsinchu 30013, Taiwan.

Department of Materials Science and Engineering, National Tsing Hua University, 101, Sec. 2, Kuang-Fu Rd., Hsinchu 30013, Taiwan.

出版信息

Acta Biomater. 2016 Feb;31:33-49. doi: 10.1016/j.actbio.2015.11.040. Epub 2015 Nov 28.

Abstract

UNLABELLED

After hundreds of million years of evolution, natural armors have evolved in various organisms, and has manifested in diverse forms such as eggshells, abalone shells, alligator osteoderms, turtle shells, and fish scales. Eggshells serve as multifunctional shields for successful embryogenesis, such as protection, moisture control and thermal regulation. Unlike calcareous avian eggshells which are brittle and hard, reptilians have leathery eggshells that are tough and flexible. Reptilian eggshells can withstand collision damages when laid in holes and dropped onto each other, and reduce abrasion caused by buried sand. In this study, we investigate structure and mechanical properties of eggshells of Taiwan cobra snake (Naja atra) and Chinese striped-neck turtle (Ocadia sinensis). From Acid Fuchsin Orange G (AFOG) staining and ATR-FTIR examination, we found that both eggshells are mainly composed of keratin. The mechanical properties of demineralized snake and turtle eggshells were evaluated by tensile and fracture tests and show distinctly difference. Turtle eggshells are relatively stiff and rigid, while snake eggshells behave as elastomers, which are highly extensible and reversible. The exceptional deformability (110-230% tensile strain) and toughness of snake eggshells are contributed by the wavy and random arrangement of keratin fibers as well as collagen layers. Multi-scale toughening mechanisms of snake eggshells were observed and elucidated, including crack deflection and twisting, fibers reorientation, sliding and bridging, inter-laminar shear effect, as well as the α-β phase transition of keratin. Inspirations from the structural and mechanical designs of reptilian eggshells may lead to the synthesis of tough, extensible, lightweight composites which could be further applied in the flexible devices, packaging and bio-medical fields.

STATEMENT OF SIGNIFICANCE

Amniotic eggshells serve as multifunctional shields for successful embryogenesis. The avian eggshells have been extensively studied while there are very few studies on reptilian eggshells and most of them focused on mineralization and embryotic development. For the first time, the hierarchical structure and mechanical properties of snake and turtle eggshells are comprehensively and comparatively studied. Both snake and turtle eggshells are multilayer, hierarchically-structured composites consisting mainly of keratin yet their mechanical behaviors are distinctly different. Turtle eggshells are stiff and rigid, while snake eggshells are highly extensible (>200%) and reversible due to multiple deformation stages, phase transition of keratin and various toughening mechanisms. We believe that this study will make positive scientific impact and interest the broad and multidisciplinary readership.

摘要

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经过数亿年的进化,天然盔甲在各种生物体中进化,以蛋壳、鲍鱼壳、鳄鱼骨板、龟壳和鱼鳞等多种形式表现出来。蛋壳作为胚胎成功发育的多功能盾牌,例如保护、水分控制和热调节。与易碎且坚硬的钙质鸟类蛋壳不同,爬行动物的蛋壳坚韧且有弹性。爬行动物的蛋壳在放入洞穴中掉落或相互碰撞时可以承受碰撞损坏,并减少被埋沙粒的磨损。在这项研究中,我们研究了台湾眼镜蛇(Naja atra)和中华鳖(Ocadia sinensis)蛋壳的结构和力学性能。通过酸藏红橙 G(AFOG)染色和 ATR-FTIR 检查,我们发现这两种蛋壳主要由角蛋白组成。通过拉伸和断裂试验评估脱矿化蛇和龟蛋壳的力学性能,结果表明两者之间存在明显差异。龟蛋壳相对僵硬和刚性,而蛇蛋壳则表现为弹性体,具有高度的可扩展性和可恢复性。蛇蛋壳的异常可变形性(110-230%拉伸应变)和韧性归因于角蛋白纤维和胶原层的波浪形和随机排列。观察到并阐明了蛇蛋壳的多尺度增韧机制,包括裂纹偏转和扭转、纤维重定向、滑动和桥接、层间剪切效应以及角蛋白的α-β相变。从爬行动物蛋壳的结构和力学设计中获得的灵感可能导致坚韧、可拉伸、重量轻的复合材料的合成,这些复合材料可进一步应用于柔性设备、包装和生物医学领域。

意义声明

羊膜卵作为胚胎成功发育的多功能盾牌。鸟类蛋壳已被广泛研究,而对爬行动物蛋壳的研究却很少,而且大多数研究都集中在矿化和胚胎发育上。首次全面比较研究了蛇和龟蛋壳的分层结构和力学性能。蛇和龟蛋壳均为多层、分层结构的复合材料,主要由角蛋白组成,但它们的力学行为明显不同。龟蛋壳坚硬而刚性,而蛇蛋壳由于具有多个变形阶段、角蛋白的相变和各种增韧机制,具有高度的可扩展性(>200%)和可恢复性。我们相信这项研究将产生积极的科学影响,并引起广大跨学科读者的兴趣。

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