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A Spatially Explicit Model Shows How Titin Stiffness Modulates Muscle Mechanics and Energetics

机译:空间显式模型显示了Titin刚度如何调节肌肉力学和能量学

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摘要

In striated muscle, the giant protein titin spans the entire length of a half-sarcomere and extends from the backbone of the thick filament, reversibly attaches to the thin filaments, and anchors to the dense protein network of the z-disk capping the end of the half-sarcomere. However, little is known about the relationship between the basic mechanical properties of titin and muscle contractility. Here, we build upon our previous multi-filament, spatially explicit computational model of the half-sarcomere by incorporating the nonlinear mechanics of titin filaments in the I-band. We vary parameters of the nonlinearity to understand the effects of titin stiffness on contraction dynamics and efficiency. We do so by simulating isometric contraction for a range of sarcomere lengths (SLs; 1.6–3.25 µm). Intermediate values of titin stiffness accurately reproduce the passive force–SL relation for skeletal muscle. The maximum force–SL relation is not affected by titin for SL≤2.5 µm. However, as titin stiffness increases, maximum force for the four thick filament system at SL = 3.0 µm significantly decreases from 103.2 ± 2 to 58.8 ± 1 pN. Additionally, by monitoring ATP consumption, we measure contraction efficiency as a function of titin stiffness. We find that at SL = 3.0 µm, efficiency significantly decreases from 13.9 ± 0.4 to 7.0 ± 0.3 pN/ATP when increasing titin stiffness, with little or no effect below 2.5 µm. Taken together, our results suggest that, despite an increase in the fraction of motors bound to actin along the descending limb when titin is stiffer, the force-generating capacity of the motors is reduced. These results suggest that titin stiffness has the potential to affect contractile efficiency.
机译:在横纹肌中,巨大的蛋白滴定蛋白横跨半个肌节的整个长度,并从粗细丝的骨架延伸,可逆地附着在细细丝上,并锚定在Z形盘末端的致密蛋白网络上。半肌节。但是,关于钛蛋白的基本机械性能与肌肉收缩性之间关系的了解甚少。在这里,我们通过结合I波段中钛纤维细丝的非线性力学,在以前的多纤维,半肌节的空间显式计算模型的基础上建立。我们改变非线性的参数以了解钛蛋白刚度对收缩动力学和效率的影响。我们通过模拟一系列肌节长度(SLs; 1.6–3.25μm)的等距收缩来实现。纤度刚度的中间值准确地再现了骨骼肌的被动力-SL关系。当SL≤2.5μm时,最大力与SL的关系不受钛的影响。然而,随着纤度刚度的增加,在SL = 3.0 µm时,四根粗细丝系统的最大作用力从103.2±2显着降低到58.8±1 pN。此外,通过监测ATP的消耗量,我们可以测量收缩效率与肌动蛋白硬度的关系。我们发现,在SL = 3.0 µm时,当提高纤度刚度时,效率从13.9±0.4显着降低到7.0±0.3 pN / ATP,而在2.5 µm以下几乎没有影响。两者合计,我们的结果表明,尽管当泰坦变硬时,与肌动蛋白结合的马达沿下降臂的比例增加,但马达的发力能力却降低了。这些结果表明,肌蛋白的刚度有可能影响收缩效率。

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