Functional anatomy of the gibbon forelimb: adaptations to a brachiating lifestyle

Функциональная анатомия передней конечности гиббонов: адаптации к брахиации
Fana Michilsens, Evie Vereecke, Kristiaan D’Août, Peter Aerts
2009-06-10

brachiationelbow flexorsgibbon forelimb anatomymuscle-tendon architecturephysiological cross-sectional area
It has been shown that gibbons are able to brachiate with very low mechanical costs. The conversion of muscle activity into smooth, purposeful movement of the limb depends on the morphometry of muscles and their mechanical action on the skeleton. Despite the gibbon's reputation for excellence in brachiation, little information is available regarding either its gross musculoskeletal anatomy or its more detailed muscle-tendon architecture. We provide quantitative anatomical data on the muscle-tendon architecture (muscle mass, physiological cross-sectional area, fascicle length and tendon length) of the forelimb of four gibbon species, collected by detailed dissections of unfixed cadavers. Data are compared between different gibbon species and with similar published data of non-brachiating primates such as macaques, chimpanzees and humans. No quantitative differences are found between the studied gibbon species. Both their forelimb anatomy and muscle dimensions are comparable when normalized to the same body mass. Gibbons have shoulder flexors, extensors, rotator muscles and elbow flexors with a high power or work-generating capacity and their wrist flexors have a high force-generating capacity. Compared with other primates, the elbow flexors of gibbons are particularly powerful, suggesting that these muscles are particularly important for a brachiating lifestyle. Based on this anatomical study, the shoulder flexors, extensors, rotator muscles, elbow flexors and wrist flexors are expected to contribute the most to brachiation.
1
Four gibbon species show no quantitative differences in forelimb anatomy or muscle dimensions when normalized to the same body mass.
2
Gibbon elbow flexors are particularly powerful compared with those of other primates, indicating their importance for brachiation.
3
Gibbon shoulder flexors, extensors, rotators, and elbow flexors have high power- or work-generating capacity, while wrist flexors have high force-generating capacity.
4
Shoulder and elbow muscles, together with wrist flexors, are predicted to contribute most strongly to gibbon brachiation.
5
The study provides quantitative muscle–tendon architectural data for gibbon forelimbs, including muscle mass, physiological cross-sectional area, fascicle length, and tendon length.

The forelimb musculoskeletal anatomy and muscle-tendon architecture of four gibbon species

Quantitative anatomical adaptations and muscle force-, power-, and work-generating capacities supporting brachiation

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2009-06-10
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Fana Michilsens
Evie Vereecke
Kristiaan D’Août
Peter Aerts
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