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Elastic Energy Storage and Radial Forces in the Myofilament Lattice Depend on Sarcomere Length

机译:肌纤维格子中的弹性能量存储和径向力取决于肌小节长度

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摘要

We most often consider muscle as a motor generating force in the direction of shortening, but less often consider its roles as a spring or a brake. Here we develop a fully three-dimensional spatially explicit model of muscle to isolate the locations of forces and energies that are difficult to separate experimentally. We show the strain energy in the thick and thin filaments is less than one third the strain energy in attached cross-bridges. This result suggests the cross-bridges act as springs, storing energy within muscle in addition to generating the force which powers muscle. Comparing model estimates of energy consumed to elastic energy stored, we show that the ratio of these two properties changes with sarcomere length. The model predicts storage of a greater fraction of energy at short sarcomere lengths, suggesting a mechanism by which muscle function shifts as force production declines, from motor to spring. Additionally, we investigate the force that muscle produces in the radial or transverse direction, orthogonal to the direction of shortening. We confirm prior experimental estimates that place radial forces on the same order of magnitude as axial forces, although we find that radial forces and axial forces vary differently with changes in sarcomere length.
机译:我们最常将肌肉视为在缩短方向上产生动力的力量,但很少将其视为弹簧或制动器的作用。在这里,我们开发了一个完整的三维空间显式肌肉模型,以隔离难以通过实验分离的力和能量的位置。我们显示出粗细丝中的应变能小于附接的跨桥中应变能的三分之一。该结果表明,跨桥起到了弹簧的作用,除了产生为肌肉提供动力的力外,还在肌肉内存储能量。比较消耗的能量与存储的弹性能量的模型估计,我们发现这两个属性的比率随肌节长度而变化。该模型预测在短的肌节长度上会存储更多的能量,这表明了一种机制,随着力量产生的减少,肌肉功能会发生变化,从运动到弹簧。此外,我们研究了肌肉在与缩短方向正交的径向或横向方向上产生的力。尽管我们发现径向力和轴向力随肌节长度的变化而变化,但我们确认了先前的实验估计,即径向力与轴向力处于相同的数量级。

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