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Shifting gears: dynamic muscle shape changes and force-velocity behavior in the medial gastrocnemius

机译:换档:内侧腓肠肌的动态肌肉形状变化和力速行为

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摘要

When muscles contract, they bulge in thickness or in width to maintain a (nearly) constant volume. These dynamic shape changes are tightly linked to the internal constraints placed on individual muscle fibers and play a key functional role in modulating the mechanical performance of skeletal muscle by increasing its range of operating velocities. Yet to date we have a limited understanding of the nature and functional implications of in vivo dynamic muscle shape change under submaximal conditions. This study determined how the in vivo changes in medial gastrocnemius (MG) fascicle velocity, pennation angle, muscle thickness, and subsequent muscle gearing varied as a function of force and velocity. To do this, we obtained recordings of MG tendon length, fascicle length, pennation angle, and thickness using B-mode ultrasound and muscle activation using surface electromyography during cycling at a range of cadences and loads. We found that that increases in contractile force were accompanied by reduced bulging in muscle thickness, reduced increases in pennation angle, and faster fascicle shortening. Although the force and velocity of a muscle contraction are inversely related due to the force-velocity effect, this study has shown how dynamic muscle shape changes are influenced by force and not influenced by velocity.>NEW & NOTEWORTHY During movement, skeletal muscles contract and bulge in thickness or width. These shape changes play a key role in modulating the performance of skeletal muscle by increasing its range of operating velocities. Yet to date the underlying mechanisms associated with muscle shape change remain largely unexplored. This study identified muscle force, and not velocity, as the mechanistic driving factor to allow for muscle gearing to vary depending on the contractile conditions during human cycling.
机译:当肌肉收缩时,它们的厚度或宽度会隆起,以保持(几乎)恒定的体积。这些动态的形状变化与放置在单个肌肉纤维上的内部约束紧密相关,并在通过增加操作速度范围来调节骨骼肌的机械性能中发挥关键功能作用。迄今为止,我们对在次最大条件下体内动态肌肉形状改变的性质和功能含义的了解有限。这项研究确定了内侧腓肠肌(MG)束速度,垂体角度,肌肉厚度以及随后的肌肉齿轮随压力和速度变化的体内变化。为此,我们在一系列节奏和负荷下骑行期间,使用B型超声和使用表面肌电图的肌肉激活,获取了MG肌腱长度,束长度,垂线角度和厚度的记录。我们发现,收缩力的增加伴随着肌肉厚度的减少,垂垂角度的增加以及短束的缩短。尽管由于力度效应,肌肉收缩的力和速度成反比,但这项研究表明,动态肌肉形状变化是如何受力影响而不受速度影响的。> NEW&NOTEWORTHY 运动,骨骼肌的收缩或隆起的厚度或宽度。这些形状变化通过增加操作速度范围在调节骨骼肌的性能中起关键作用。迄今为止,与肌肉形状改变相关的潜在机制仍未得到充分探索。这项研究确定了肌肉力量而非速度,将其作为允许肌肉齿轮根据人类骑行过程中的收缩条件而变化的机械驱动因素。

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