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螳螂虾的比较弹性力学。

Comparative spring mechanics in mantis shrimp.

机构信息

Department of Biology, Organismic and Evolutionary Graduate Program, University of Massachusetts Amherst, MA 01003, USA.

出版信息

J Exp Biol. 2013 Apr 1;216(Pt 7):1317-29. doi: 10.1242/jeb.078998. Epub 2012 Dec 13.

Abstract

Elastic mechanisms are fundamental to fast and efficient movements. Mantis shrimp power their fast raptorial appendages using a conserved network of exoskeletal springs, linkages and latches. Their appendages are fantastically diverse, ranging from spears to hammers. We measured the spring mechanics of 12 mantis shrimp species from five different families exhibiting hammer-shaped, spear-shaped and undifferentiated appendages. Across species, spring force and work increase with size of the appendage and spring constant is not correlated with size. Species that hammer their prey exhibit significantly greater spring resilience compared with species that impale evasive prey ('spearers'); mixed statistical results show that species that hammer prey also produce greater work relative to size during spring loading compared with spearers. Disabling part of the spring mechanism, the 'saddle', significantly decreases spring force and work in three smasher species; cross-species analyses show a greater effect of cutting the saddle on the spring force and spring constant in species without hammers compared with species with hammers. Overall, the study shows a more potent spring mechanism in the faster and more powerful hammering species compared with spearing species while also highlighting the challenges of reconciling within-species and cross-species mechanical analyses when different processes may be acting at these two different levels of analysis. The observed mechanical variation in spring mechanics provides insights into the evolutionary history, morphological components and mechanical behavior, which were not discernible in prior single-species studies. The results also suggest that, even with a conserved spring mechanism, spring behavior, potency and component structures can be varied within a clade with implications for the behavioral functions of power-amplified devices.

摘要

弹性机制是快速高效运动的基础。螳螂虾利用其外骨骼弹簧、连杆和闩锁的保守网络来为其快速的捕食附肢提供动力。它们的附肢种类繁多,从长矛到锤子都有。我们测量了来自五个不同科的 12 种螳螂虾的弹簧力学特性,这些科的物种都具有锤状、矛状和未分化的附肢。在物种间,弹簧力和功随附肢尺寸的增加而增加,而弹簧常数与尺寸无关。与刺穿逃避性猎物的“矛手”相比,锤击猎物的物种表现出显著更大的弹簧弹性;混合统计结果表明,与矛手相比,锤击猎物的物种在弹簧加载期间相对于尺寸产生更大的功。破坏弹簧机构的一部分,即“鞍座”,会显著降低三种粉碎者物种的弹簧力和功;跨物种分析表明,在没有锤子的物种中,切断鞍座对弹簧力和弹簧常数的影响大于有锤子的物种。总的来说,与矛手物种相比,该研究表明在更快、更强大的锤击物种中具有更强的弹簧机制,同时也强调了在不同的过程可能在这两个不同的分析层面上起作用时,协调种内和种间机械分析的挑战。弹簧力学的观察到的机械变化提供了关于进化历史、形态组成和机械行为的见解,这些在以前的单一物种研究中是无法分辨的。结果还表明,即使具有保守的弹簧机制,弹簧行为、效力和组件结构也可以在一个进化枝内变化,这对功率放大装置的行为功能有影响。

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