Finni T, Ikegawa S, Lepola V, Komi P V
Department of Biology of Physical Activity, University of Jyväskylä, Finland.
Acta Physiol Scand. 2003 Apr;177(4):483-91. doi: 10.1046/j.1365-201X.2003.01069.x.
This study investigated the force-velocity characteristics of the vastus lateralis (VL) muscle fascicle and muscle-tendon unit (MTU) in isolated lengthening and shortening actions, and during natural movement.
Four subjects performed maximal eccentric and concentric knee extensions (60, 120 and 180 degrees s-1). Unilateral counter movement jumps and drop jumps in the sledge apparatus served as natural movements. Vastus lateralis fascicle lengths were determined from ultrasonography. In vivo patellar tendon forces (PTF) were measured with an optic fibre technique. Patellar tendon force was derived to VL force according to the cross-sectional area of the muscle. Force in the direction of fascicle was calculated by dividing the VL force value by cosine of the fascicle angle. Force-velocity curves were constructed using angle specific values from isokinetic knee extensions (classical curve) and using instantaneous values from jumping exercises.
In the fascicle level, we did not find an enhanced muscle force in the jumping performances as compared with the classical force-velocity curve. In the muscle-tendon level, the instantaneous force at high muscle-tendon shortening speeds exceeded that extrapolated according to Hill's equation.
This difference between fascicle and muscle-tendon behaviour suggests that the neural input in fast stretch-shortening cycle exercises minimizes the length changes in muscle fascicle and enables storage and recoil of energy from elastic components that contributes to the enhanced mechanical output of the MTU during the push-off phase.
本研究调查了股外侧肌(VL)肌束和肌腱单元(MTU)在孤立的拉长和缩短动作以及自然运动过程中的力-速度特性。
四名受试者进行了最大离心和向心膝关节伸展(60、120和180度/秒)。在雪橇装置中进行的单侧反向跳跃和下落跳跃作为自然运动。通过超声检查确定股外侧肌束长度。使用光纤技术测量体内髌腱力(PTF)。根据肌肉的横截面积将髌腱力推导为VL力。通过将VL力值除以肌束角度的余弦来计算肌束方向上的力。使用等速膝关节伸展的特定角度值(经典曲线)和跳跃练习的瞬时值构建力-速度曲线。
在肌束水平上,与经典力-速度曲线相比,我们在跳跃表现中未发现肌肉力量增强。在肌腱水平上,高肌腱缩短速度下的瞬时力超过了根据希尔方程外推的值。
肌束和肌腱行为之间的这种差异表明,快速伸缩周期运动中的神经输入使肌束长度变化最小化,并使弹性成分的能量储存和回弹成为可能,这有助于在蹬地阶段增强MTU的机械输出。