Whole Body Mechanics of Stealthy Walking in Cats
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Open Access
- 26 November 2008
- journal article
- research article
- Published by Public Library of Science (PLoS) in PLOS ONE
- Vol. 3 (11) , e3808
- https://doi.org/10.1371/journal.pone.0003808
Abstract
The metabolic cost associated with locomotion represents a significant part of an animal's metabolic energy budget. Therefore understanding the ways in which animals manage the energy required for locomotion by controlling muscular effort is critical to understanding limb design and the evolution of locomotor behavior. The assumption that energetic economy is the most important target of natural selection underlies many analyses of steady animal locomotion, leading to the prediction that animals will choose gaits and postures that maximize energetic efficiency. Many quadrupedal animals, particularly those that specialize in long distance steady locomotion, do in fact reduce the muscular contribution required for walking by adopting pendulum-like center of mass movements that facilitate exchange between kinetic energy (KE) and potential energy (PE) [1]–[4]. However, animals that are not specialized for long distance steady locomotion may face a more complex set of requirements, some of which may conflict with the efficient exchange of mechanical energy. For example, the “stealthy” walking style of cats may demand slow movements performed with the center of mass close to the ground. Force plate and video data show that domestic cats (Felis catus, Linnaeus, 1758) have lower mechanical energy recovery than mammals specialized for distance. A strong negative correlation was found between mechanical energy recovery and diagonality in the footfalls and there was also a negative correlation between limb compression and diagonality of footfalls such that more crouched postures tended to have greater diagonality. These data show a previously unrecognized mechanical relationship in which crouched postures are associated with changes in footfall pattern which are in turn related to reduced mechanical energy recovery. Low energy recovery was not associated with decreased vertical oscillations of the center of mass as theoretically predicted, but rather with posture and footfall pattern on the phase relationship between potential and kinetic energy. An important implication of these results is the possibility of a tradeoff between stealthy walking and economy of locomotion. This potential tradeoff highlights the complex and conflicting pressures that may govern the locomotor choices that animals make.Keywords
This publication has 14 references indexed in Scilit:
- Posture, gait and the ecological relevance of locomotor costs and energy-saving mechanisms in tetrapodsZoology, 2007
- Mechanics of dog walking compared with a passive, stiff-limbed, 4-bar linkage model, and their collisional implicationsJournal of Experimental Biology, 2007
- Patterns of mechanical energy change in tetrapod gait: pendula, springs and workJournal of Experimental Zoology Part A: Comparative Experimental Biology, 2006
- Correlation of symmetrical gaits and whole body mechanics: debunking myths in locomotor biodynamicsJournal of Experimental Zoology Part A: Comparative Experimental Biology, 2006
- Compliant leg behaviour explains basic dynamics of walking and runningProceedings Of The Royal Society B-Biological Sciences, 2006
- Giant Galápagos tortoises walk without inverted pendulum mechanical-energy exchangeJournal of Experimental Biology, 2005
- Biomechanics of quadrupedal walking: how do four-legged animals achieve inverted pendulum-like movements?Journal of Experimental Biology, 2004
- Walking and running in the red-legged running frog,Kassina maculataJournal of Experimental Biology, 2004
- Support polygons and symmetrical gaits in mammalsZoological Journal of the Linnean Society, 2002
- The kinetics of primate quadrupedalism: "hindlimb drive" reconsideredJournal of Human Evolution, 1994