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Leg Loss Decreases Endurance and Increases Oxygen Consumption During Locomotion in Harvestmen

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Publisher Springer
Date 2020 Nov 25
PMID 33236163
Citations 7
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Abstract

Animal movements are highly constrained by morphology and energetics. In addition, predictable bodily damage can constrain locomotion even further. For example, for animals moving on land, losing legs may impose additional costs. We tested if losing legs affects the distance travelled over time (endurance) and the metabolic costs of locomotion (oxygen consumption) in Nelima paessleri harvestmen. These arachnids voluntary releases legs (i.e., autotomy) in response to predation attempts. We used flow-through respirometry as animals moved on a treadmill inside a sealed chamber. We found that endurance decreased gradually with an increasing number of legs lost. Interestingly, oxygen consumption increased only for harvestmen that lost three legs, but not for individuals that lost only a single leg. These results have different ecological and evolutionary implications. Reduced endurance may impair an animal's ability to continue moving away from potential predators, while increased oxygen consumption makes movement costlier. Our findings suggest that individuals have a threshold number of legs that can be lost before experiencing measurable energetic consequences. Overall, our findings illustrate how animals respond to morphological modifications (i.e., damage) that affect the physiology of locomotion.

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References
1.
Biro P, Stamps J . Do consistent individual differences in metabolic rate promote consistent individual differences in behavior?. Trends Ecol Evol. 2010; 25(11):653-9. DOI: 10.1016/j.tree.2010.08.003. View

2.
Emberts Z, Escalante I, Bateman P . The ecology and evolution of autotomy. Biol Rev Camb Philos Soc. 2019; 94(6):1881-1896. DOI: 10.1111/brv.12539. View

3.
Fleming P, Muller D, Bateman P . Leave it all behind: a taxonomic perspective of autotomy in invertebrates. Biol Rev Camb Philos Soc. 2007; 82(3):481-510. DOI: 10.1111/j.1469-185X.2007.00020.x. View

4.
Fleming P, Verburgt L, Scantlebury M, Medger K, Bateman P . Jettisoning ballast or fuel? Caudal autotomy and locomotory energetics of the Cape dwarf gecko Lygodactylus capensis (Gekkonidae). Physiol Biochem Zool. 2009; 82(6):756-65. DOI: 10.1086/605953. View

5.
Full R, Tu M . Mechanics of a rapid running insect: two-, four- and six-legged locomotion. J Exp Biol. 1991; 156:215-31. DOI: 10.1242/jeb.156.1.215. View