首页> 美国卫生研究院文献>Advanced Science >On the Origins of Fracture Toughness in Advanced Teleosts: How the Swordfish Swords Bone Structure and Composition Allow for Slashing under Water to Kill or Stun Prey
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On the Origins of Fracture Toughness in Advanced Teleosts: How the Swordfish Swords Bone Structure and Composition Allow for Slashing under Water to Kill or Stun Prey

机译:关于高级硬骨鱼骨折韧度的起源:箭鱼剑的骨骼结构和成分如何允许在水中进行砍杀或杀死猎物

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摘要

The osseous sword of a swordfish (Xiphias gladius) is specialized to incapacitate prey with stunning blows. Considering the sword's growth and maturation pattern, aging from the sword's base to the tip, while missing a mechanosensitive osteocytic network, an in‐depth understanding of its mechanical properties and bone quality is lacking. Microstructural, compositional, and nanomechanical characteristics of the bone along the sword are investigated to reveal structural mechanisms accounting for its exceptional mechanical competence. The degree of mineralization, homogeneity, and particle size increase from the base toward the tip, reflecting aging along its length. Fracture experiments reveal that crack‐growth toughness vastly decreases at the highly and homogeneously mineralized tip, suggesting the importance of aging effects. Initiation toughness, however, is unchanged suggesting that aging effects on this hierarchical level are counteracted by constant mineral/fibril interaction. In conclusion, the sword of the swordfish provides an excellent model reflecting base‐to‐tip‐wise aging of bone, as indicated by increasing mineralization and decreasing crack‐growth toughness toward the tip. The hierarchical, structural, and compositional changes along the sword reflect peculiar prerequisites needed for resisting high mechanical loads. Further studies on advanced teleosts bone tissue may help to unravel structure–function relationships of heavily loaded skeletons lacking mechanosensing cells.
机译:箭鱼的骨质剑(Xiphias gladius)专门用来使猎物失去能力并受到惊人的打击。考虑到剑的生长和成熟方式,从剑根到剑尖的老化,同时缺少机械敏感的骨细胞网络,缺乏对剑的机械性能和骨骼质量的深​​入了解。研究了沿剑骨的微观结构,组成和纳米力学特征,以揭示其卓越机械能力的结构机制。矿化程度,均匀性和粒径从底部到尖端逐渐增加,反映出沿其长度方向的老化。断裂实验表明,在高度均匀矿化的尖端,裂纹扩展韧性大大降低,这表明时效的重要性。然而,起始韧性没有改变,这表明在该等级水平上的老化作用被恒定的矿物质/原纤维相互作用抵消。总之,箭鱼的剑提供了一个出色的模型,可以反映出骨骼从基部到尖端的老化情况,这可以通过增加矿化作用和减小尖端的裂纹扩展韧性来表明。沿剑的等级,结构和成分变化反映了抵抗高机械负荷所需的特殊先决条件。对高级硬骨鱼骨组织的进一步研究可能有助于揭示缺乏机械传感细胞的重负荷骨骼的结构与功能的关系。

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