The effect of gait and digital flexor muscle activation on limb compliance in the forelimb of the horseEquus caballus
- 15 April 2003
- journal article
- Published by The Company of Biologists in Journal of Experimental Biology
- Vol. 206 (8), 1325-1336
- https://doi.org/10.1242/jeb.00254
Abstract
SUMMARY A horse9s legs are compressed during the stance phase, storing and then returning elastic strain energy in spring-like muscle-tendon units. The arrangement of the muscle-tendon units around the lever-like joints means that as the leg shortens the muscle-tendon units are stretched. The forelimb anatomy means that the leg can be conceptually divided into two springs: the proximal spring, from the scapula to the elbow, and the distal spring, from the elbow to the foot. In this paper we report the results of a series of experiments testing the hypothesis that there is minimal scope for muscle contraction in either spring to adjust limb compliance. Firstly, we demonstrate that the distal, passive leg spring changes length by 127 mm (range 106-128 mm) at gallop and the proximal spring by 12 mm (9-15 mm). Secondly, we demonstrate that there is a linear relationship between limb force and metacarpo-phalangeal (MCP) joint angle that is minimally influenced by digital flexor muscle activation in vitro or as a function of gait in vivo. Finally, we determined the relationship between MCP joint angle and vertical ground-reaction force at trot and then predicted the forelimb peak vertical ground-reaction force during a 12 m s-1 gallop on a treadmill. These were 12.79 N kg-1 body mass (BM) (range 12.07-13.73 N kg-1 BM) for the lead forelimb and 15.23 N kg-1 BM (13.51-17.10 N kg-1 BM) for the non-lead forelimb.This publication has 39 references indexed in Scilit:
- The effects of a rider's mass on ground reaction forces and fetlock kinematics at the trotEquine Veterinary Journal, 1999
- Influence of rough track surfaces on components of vertical forces in cantering Thoroughbred horsesEquine Veterinary Journal, 1999
- Treadmill exercise‐induced tendon hypertrophy: assessment of tendons with different mechanical functionsEquine Veterinary Journal, 1999
- Muscle Functionin vivo: A Comparison of Muscles used for Elastic Energy SavingsversusMuscles Used to Generate Mechanical Power1American Zoologist, 1998
- Leg stiffness and stride frequency in human runningJournal of Biomechanics, 1996
- Habituation of horses to treadmill locomotionEquine Veterinary Journal, 1994
- A quantitative analysis of skin displacement in the trotting horseEquine Veterinary Journal, 1990
- Investigation of the vertical hoof force distribution in the equine forelimb with an instrumented horsebootEquine Veterinary Journal, 1990
- The role of tendon elasticity in the locomotion of the camel (Camelus dromedarius)Journal of Zoology, 1982
- Mechanics of running of the ostrich (Struthio camelus)Journal of Zoology, 1979