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鸟类股骨几何和力学特性的个体发育变化:早成性鸟类和晚成性鸟类的比较。

Ontogenetic changes of geometrical and mechanical characteristics of the avian femur: a comparison between precocial and altricial birds.

机构信息

College of Life Sciences, Capital Normal University, Beijing, China.

出版信息

J Anat. 2019 Nov;235(5):903-911. doi: 10.1111/joa.13062. Epub 2019 Jul 29.

Abstract

The mechanical performance of limb bones is closely associated with an animal's locomotor capability and is thus important to our understanding of animal behaviour. This study combined a geometrical analysis and three-point bending tests to address the question of how the mechanical performance of the femurs of Japanese quail (Coturnix coturnix japonica) and pigeon (Columba livia domestica) respond to changing functional demands during ontogeny. Results showed that hatchling quails had stiff bone tissues, and the femoral ultimate loads scaled negatively with body mass, corresponding to high functional demands during early growth. The hatchling pigeon femora had weak material properties but they showed a dramatic increase in Young's modulus during growth. Consequently, although femoral cross-sectional geometry showed negative allometry, the ultimate loads scaled positively with body mass. Older pigeons had more circular bone cross-sections than younger pigeons, probably due to load stimulation changes occurred shortly after the onset of locomotion. Negative allometry and isometry of the cross-sectional geometry of hind limb bones were observed in flying birds and ground-dwelling birds, respectively. The correspondence between geometrical change and locomotor pattern suggests that ontogenetic changes in cross-sectional geometry may be an effective indicator of avian locomotor behaviour.

摘要

肢骨的力学性能与动物的运动能力密切相关,因此对于我们理解动物的行为很重要。本研究结合几何分析和三点弯曲试验,探讨了日本鹌鹑( Coturnix coturnix japonica )和鸽子( Columba livia domestica )股骨的力学性能如何响应个体发育过程中功能需求的变化。结果表明,雏鸟的骨骼组织僵硬,股骨的极限载荷与体重呈负相关,这与早期生长过程中的高功能需求相对应。雏鸽的股骨具有较弱的力学性能,但在生长过程中杨氏模量显著增加。因此,尽管股骨的横截面积表现出负异速生长,但极限载荷与体重呈正相关。与年轻的鸽子相比,老年鸽子的骨横截面更接近圆形,这可能是由于在开始运动后不久,负荷刺激发生了变化。在飞行鸟类和地面鸟类中,后肢骨骼的横截面积呈现负异速生长和等比例生长。几何形状变化与运动模式之间的对应关系表明,横截面积的个体发育变化可能是鸟类运动行为的有效指标。

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