One step beyond: Different step-to-step transitions exist during continuous contact brachiation in siamangs

Author:

Michilsens Fana12,D'Août Kristiaan12,Vereecke Evie E.13,Aerts Peter14

Affiliation:

1. Department of Biology, University of Antwerp, CDE-C, Universiteitsplein 1, 2610 Wilrijk, Belgium

2. Centre for Research and Conservation, RZSA, Kongingin Astridplein 26, 2018 Antwerp, Belgium

3. Biomedical Science Group Kulak, University of Leuven, Etienne Sabbelaan 53, 8500 Kortrijk, Belgium

4. Department of Movement and Sport Sciences, University of Ghent, Watersportlaan 2, 9000 Ghent, Belgium

Abstract

Summary In brachiation, two main gaits are distinguished, ricochetal brachiation and continuous contact brachiation. During ricochetal brachiation, a flight phase exists and the body centre of mass (bCOM) describes a parabolic trajectory. For continuous contact brachiation, where at least one hand is always in contact with the substrate, we showed in an earlier paper that four step-to-step transition types occur. We referred to these as a ‘point’, a ‘loop’, a ‘backward pendulum’ and a ‘parabolic’ transition. Only the first two transition types have previously been mentioned in the existing literature on gibbon brachiation. In the current study, we used three-dimensional video and force analysis to describe and characterize these four step-to-step transition types. Results show that, although individual preference occurs, the brachiation strides characterized by each transition type are mainly associated with speed. Yet, these four transitions seem to form a continuum rather than four distinct types. Energy recovery and collision fraction are used as estimators of mechanical efficiency of brachiation and, remarkably, these parameters do not differ between strides with different transition types. All strides show high energy recoveries (mean  = 70±11.4%) and low collision fractions (mean  = 0.2±0.13), regardless of the step-to-step transition type used. We conclude that siamangs have efficient means of modifying locomotor speed during continuous contact brachiation by choosing particular step-to-step transition types, which all minimize collision fraction and enhance energy recovery.

Publisher

The Company of Biologists

Subject

General Agricultural and Biological Sciences,General Biochemistry, Genetics and Molecular Biology

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