Takahashi Toshiyuki, Mukai Kazutaka, Ohmura Hajime, Aida Hiroko, Hiraga Atsushi
Sport Science Division, Equine Research Institute, Japan Racing Association, Tochigi 320-0856, Japan.
J Equine Sci. 2014;25(1):15-22. doi: 10.1294/jes.25.15. Epub 2014 Apr 22.
The purpose of this study was to create a lower forelimb model of the Thoroughbred horse for measuring the force in the superficial and deep digital flexor tendons (SDFT and DDFT), and the suspensory ligament (SL) during a trot. The mass, centers of gravity, and inertial moments in the metacarpus, pastern, and hoof segments were measured in 4 Thoroughbred horses. The moment arms of the SDFT, DDFT, and SL in the metacarpophalangeal (fetlock) and distal interphalangeal (coffin) joints were measured in 7 Thoroughbred horses. The relationship between the fetlock joint angle and the force in the SL was assessed in 3 limbs of 2 Thoroughbred horses. The forces in the SDFT, DDFT, and SL during a trot were also measured in 7 Thoroughbred horses. The mass of the 3 segments, and the moment arms of the SDFT and DDFT in the fetlock joint of the Thoroughbred horses were smaller than those of the Warmblood horses, whereas the other values were almost the same in the 2 types. The calculated force in the SDFT with this Thoroughbred model reached a peak (4,615 N) at 39.3% of the stance phase, whereas that in the DDFT reached a peak (5,076 N) at 51.2% of the stance phase. The force in the SL reached a peak (11,957 N) at 49.4% of the stance phase. This lower forelimb model of the Thoroughbred can be applied to studying the effects of different shoe types and change of hoof angle for the flexor tendon and SL forces.
本研究的目的是创建一个纯种马的前肢下部模型,用于测量小跑过程中浅屈肌腱和深屈肌腱(SDFT和DDFT)以及悬韧带(SL)中的力。在4匹纯种马中测量了掌骨、系关节和蹄段的质量、重心和惯性矩。在7匹纯种马中测量了掌指关节(球节)和远侧指间关节(蹄关节)中SDFT、DDFT和SL的力臂。在2匹纯种马的3个肢体中评估了球节关节角度与SL中力的关系。还在7匹纯种马中测量了小跑过程中SDFT、DDFT和SL中的力。纯种马的这3个节段的质量以及球节关节中SDFT和DDFT的力臂比温血马的小,而其他值在这两种类型中几乎相同。使用该纯种马模型计算出的SDFT中的力在站立阶段的39.3%时达到峰值(4615 N),而DDFT中的力在站立阶段的51.2%时达到峰值(5076 N)。SL中的力在站立阶段的49.4%时达到峰值(11957 N)。这种纯种马的前肢下部模型可用于研究不同蹄铁类型以及蹄角变化对屈肌腱和悬韧带力的影响。