The jump as a fast mode of locomotion in arboreal and terrestrial biotopes
Bibliographic Data
| ID | 22827751 |
|---|---|
| Authors | M M Gunther, Michael Günther (0000-0002-5729-1190, Ruhr University Bochum), H Ishida (0000-0003-2080-1561), Hisao Kumakura (0000-0002-7551-3279), Y Nakano (0000-0003-4340-4569) |
| Year | 1991 |
| Volume | 78 |
| Issue | 3 |
| Pages | 341-372 |
| Publication date | 1991-06-10 |
| Peer Reviewed | Yes |
| Open Access | No |
| Type | ARTICLE |
| Venue | Zeitschrift für Morphologie und Anthropologie (JOURNAL) |
| Journal identifiers | ISSN: 0044-314X • E-ISSN: 2749-1587 |
| Publisher | Schweizerbart (PUBLISHER) |
| DOI | 10.1127/zma/78/1991/341 |
| PMID | 1887664 |
| OpenAlex | W1928876162 |
| Language | EN |
| Citations received | 17 |
| References cited | 12 |
The jump is always used for locomotion. For its execution in arboreal and terrestrial biotopes the requirements are of somewhat different nature. In an arboreal biotope the jump is characterized by a rapid progression through discontinuous substrates and the ability to take off from a small area and a secure landing on a spot. This requires well coordinated movements in all phases of the jump. On the ground, the jump is less frequent and often used for crossing obstacles or gaps. In primates both variants can be observed. In order to relate the details of locomotor behaviour to a certain environment, the biomechanics of jumping are analyzed in five primate species: The three mainly arboreal prosimian species Galago moholi, the smallest and most specialized leaper of all, Galago garnettii, a medium-sized bushbaby with some capacities for jumping, and Lemur catta also with some abilities to jump. The two simian species, Macaca fuscata and Homo sapiens, are usually terrestrial and have good jumping capacities, although not in terms of quantity. The investigation is based on high-speed motion analyses (100-500 frames/second) and the synchronized records of a force-plate from which all subjects had to jump off. On the basis of the results two kinds of jumping can be distinguished: standing and running jumps. The three prosimian species perform standing jumps. Dorsiflexion of their tails compensates ventrally oriented rotational moments of the trunk during body extension at take-off. The upward arm swing yields an overall increase in take-off velocity without additional muscular force exerted by the legs. The main difference among the species are the high relative forces in the small Galago moholi (up to 13 times body weight) as compared to the larger G. garnettii (8.5 times body weight) and the even larger Lemur catta (4.5 times body weight). In Homo sapiens the standing jump is characterized by an extensive arm swing backward, which is then followed by a forward and upward movement. The velocity at take-off is much smaller if compared to the prosimians. The running jump in Macaca fuscata is always preceded by at least one gallop cycle. The body assumes a ball shape at the beginning of the actual take-off. This is advantageous for rotating the body into a position in which the trunk axis is in line with the direction of movement. The tail of the Japanese macaque is too short to compensate the trunk's lift exerted on the hip region by the extending hindlimbs.(ABSTRACT TRUNCATED AT 400 WORDS)
Arboreal locomotion · Biology · Climbing · Galago · Habitat · Jump · Jumping · Lemur · Lemur catta · Physics · Primate · Prosimian · Trunk · Animal Vocal Communication and Behavior · Cerebral Palsy and Movement Disorders · Ecology · Paleontology · Primate Behavior and Ecology
Structural design of the femoral neck in primates
Body size and leaping kinematics in Malagasy vertical clingers and leapers
Takeoff and landing forces of leaping strepsirhine primates
In vivo bone strain and bone functional adaptation
A system for 2- and 3D kinematic and kinetic analysis of locomotion, and its application to analysis of the energetic efficiency of jumping locomotion
Biomechanics and body shape in primates compared with horses
Tail length estimation from sacrocaudal skeletal morphology in catarrhines
Functional Analysis of the Thigh Muscles during Locomotion in the Garnet Galago (Galago garnetti)
External forces on the limbs of jumping lemurs at takeoff and landing
New technique for studying reaction forces during primate behaviors on vertical substrates
Kinetics of leaping primates
Calcaneal elongation and bone strength in leaping galagids
Body size and scaling of the hands and feet of prosimian primates
Morphological correlates of tail length in the catarrhine sacrum
Comparative sacral morphology and the reconstructed tail lengths of five extinct primates
Climbing, brachiation, and terrestrial quadrupedalism
Locomotor ecology ofLepilemur edwardsi andAvahi occidentalis
A Mechanical Interpretation of Terminal Branch Feeding
They seem to glide. Are there aerodynamic effects in leaping prosimian primates?
How body mass determines the locomotor performance and the proportions of prosimians
On the quality and magnitude of mechanical stresses in the locomotor system during rapid movements
Measurement of body segment mass, center of gravity, and determination of moments of inertia by double pendulum in Lemur fulvus
Aerial maneuvers of leaping lemurs
Synopsis ofGalago species characteristics
Locomotor behavior, body size, and comparative ecology of seven Surinam monkeys
Masses, centers‐of‐gravity, and moments‐of‐inertia of the body segments of the rhesus monkey ( Macaca mulatta )
Pathology in the Darajani baboon
Correlates between locomotor anatomy and behavior in two sympatric species of Lemur
The leaping of langurs
| Unique citing works | 17 |
|---|---|
| Citations per year | 0,53 |
| Citation span | 1994 - 2020 (27) |
| Citation velocity | historical |
| Highly cited | No |
| Citation types | Neutral: 13 |