大小,而不是性别,可以预测Faxonius属小龙虾的挤压力和外骨骼力学特性

IF 1.3 4区 生物学 Q3 MARINE & FRESHWATER BIOLOGY
Derek M. Benson, Ethan D. Clotfelter
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引用次数: 0

摘要

对动物武器和防御结构的研究很少考虑到它们潜在的机械特性。我们测量了两种北美小龙虾Faxonius virilis和F. limosus的爪(螯)外骨骼的抗压强度和厚度。我们对甲壳进行了类似的测量,甲壳是一个不直接参与激烈竞争的身体区域。两种雄虫产生的最大捏力都明显强于雌虫。然而,这些差异可以归因于两性之间爪子大小的差异。爪子外骨骼的厚度(超微结构)是其抗压强度的重要预测指标,可能解释了我们在两个物种之间观察到的抗压强度差异。爪厚和爪抗压强度与最大夹紧力无关。此外,我们发现小龙虾的体型是甲壳抗压强度和厚度的一个强有力的预测因子,而性别不是。爪的抗压强度和厚度均大于相应的甲壳值。我们的研究表明,小龙虾外骨骼的机械性能在很大程度上是尺寸的函数,并强调了将机械性能整合到动物形态学和性能研究中的必要性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Size, but not sex, predicts pinch force and exoskeleton mechanical properties in crayfish of the genus Faxonius

Studies of animal weaponry and defensive structures rarely take into consideration their underlying mechanical properties. We measured the compressive strength and thickness of the exoskeleton of the claw (chela) in two North American crayfish species, Faxonius virilis and F. limosus. We performed similar measures on the carapace, a body region not directly involved in agonistic contests. Males of both species generated significantly stronger maximum pinch forces than females. However, these differences can be attributed to differences in claw size between the sexes. The thickness (ultrastructure) of the claw exoskeleton was a significant predictor of its compressive strength and likely explained the difference in compressive strength we observed between the two species. Neither claw thickness nor claw compressive strength was correlated with maximum pinch force. Additionally, we found that crayfish body size was a strong predictor of carapace compressive strength and thickness, whereas sex was not. The claw had greater compressive strength and thickness than the corresponding values for the carapace. Our study shows that the mechanical properties of the crayfish exoskeleton are largely a function of size and highlights the need to integrate mechanical properties into studies of animal morphology and performance.

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来源期刊
Invertebrate Biology
Invertebrate Biology 生物-动物学
CiteScore
2.20
自引率
8.30%
发文量
28
审稿时长
>12 weeks
期刊介绍: Invertebrate Biology presents fundamental advances in our understanding of the structure, function, ecology, and evolution of the invertebrates, which represent the vast majority of animal diversity. Though ultimately organismal in focus, the journal publishes manuscripts addressing phenomena at all levels of biological organization. Invertebrate Biology welcomes manuscripts addressing the biology of invertebrates from diverse perspectives, including those of: • genetics, cell, and molecular biology • morphology and biomechanics • reproduction and development • physiology and behavior • ecology • evolution and phylogenetics
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