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首页> 外文期刊>The Journal of Experimental Biology >Geared up to stretch: pennate muscle behavior during active lengthening
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Geared up to stretch: pennate muscle behavior during active lengthening

机译:加速伸展:主动拉长时的半身肌行为

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摘要

Many locomotor activities require muscles to actively lengthen, dissipate energy and decelerate the body. These eccentric contractions can disrupt cytoskeletal structures within myofibrils and reduce force output. We examined how architectural features of pennate muscles can provide a protective mechanism against eccentric muscle damage by limiting fascicle lengthening. It has been previously shown that the angled fibers of pennate muscles change orientation when shortening. This change in fiber orientation can amplify fascicle shortening, resulting in a velocity advantage at the level of the muscle-tendon unit (MTU) that is characterized by a gear ratio (MTU velocity/fascicle velocity). A muscle's architectural gear ratio (AGR) has been shown to vary as a function of force during shortening, while AGR during lengthening remains largely unknown. We independently measured fascicle length and MTU length in vitro in the bullfrog plantaris. We characterized the muscle's force-velocity curve and AGR during both shortening and lengthening across a broad range of forces (10-190% peak isometric force). AGR was measured during the isotonic portion of each contraction, to eliminate possible contributions of series elasticity to MTU length changes. We found that gear ratio varies with force during both shortening and lengthening contractions. The highest AGR was observed during lengthening contractions, indicating that lengthening of the MTU can occur with relatively little stretch of the fascicle. As fascicle strain is considered an important determinant of muscle damage, a high gear ratio may afford pennate muscles protection against the damaging effects of active lengthening.
机译:许多运动活动需要肌肉积极地延长,消散能量并使身体减速。这些偏心收缩可破坏肌原纤维内的细胞骨架结构并降低力输出。我们研究了如何通过限制束长度的增加来构造三角肌的结构特征,从而为偏心肌的损伤提供保护机制。先前已经表明,当缩短时,三角肌的成角度的纤维会改变方向。纤维方向的这种变化可以放大束缩短,从而在以肌腱比(MTU速度/束速度)为特征的肌腱单位(MTU)水平上产生速度优势。肌肉的结构齿轮比(AGR)已显示出在缩短过程中作为力的函数而变化,而在延长过程中的AGR仍然未知。我们独立地测量了牛蛙plant体内的束长度和MTU长度。我们在跨大范围的力(10-190%峰值等距力)的缩短和延长过程中表征了肌肉的力速曲线和AGR。在每个收缩的等渗部分测量AGR,以消除系列弹性对MTU长度变化的可能影响。我们发现在缩短和延长收缩过程中,齿轮比均随力而变化。在拉长收缩过程中观察到最高的AGR,这表明MTU的拉长可以在相对较少的分束伸展下发生。由于束缚劳损被认为是肌肉损伤的重要决定因素,因此高传动比可为半身肌提供保护,使其免受主动拉长的破坏作用。

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