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首页> 外文期刊>PLoS Computational Biology >Axial and Radial Forces of Cross-Bridges Depend on Lattice Spacing
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Axial and Radial Forces of Cross-Bridges Depend on Lattice Spacing

机译:跨桥的轴向力和径向力取决于晶格间距

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Nearly all mechanochemical models of the cross-bridge treat myosin as a simple linear spring arranged parallel to the contractile filaments. These single-spring models cannot account for the radial force that muscle generates (orthogonal to the long axis of the myofilaments) or the effects of changes in filament lattice spacing. We describe a more complex myosin cross-bridge model that uses multiple springs to replicate myosin's force-generating power stroke and account for the effects of lattice spacing and radial force. The four springs which comprise this model (the 4sXB) correspond to the mechanically relevant portions of myosin's structure. As occurs in vivo, the 4sXB's state-transition kinetics and force-production dynamics vary with lattice spacing. Additionally, we describe a simpler two-spring cross-bridge (2sXB) model which produces results similar to those of the 4sXB model. Unlike the 4sXB model, the 2sXB model requires no iterative techniques, making it more computationally efficient. The rate at which both multi-spring cross-bridges bind and generate force decreases as lattice spacing grows. The axial force generated by each cross-bridge as it undergoes a power stroke increases as lattice spacing grows. The radial force that a cross-bridge produces as it undergoes a power stroke varies from expansive to compressive as lattice spacing increases. Importantly, these results mirror those for intact, contracting muscle force production.
机译:几乎所有的跨桥力学化学模型都将肌球蛋白视为平行于可收缩细丝排列的简单线性弹簧。这些单弹簧模型无法说明肌肉产生的径向力(垂直于肌丝长轴)或细丝晶格间距变化的影响。我们描述了一个更复杂的肌球蛋白跨桥模型,该模型使用多个弹簧来复制肌球蛋白的力产生动力冲程,并考虑晶格间距和径向力的影响。组成该模型的四个弹簧(4sXB)对应于肌球蛋白结构的机械相关部分。正如体内发生的那样,4sXB的状态转变动力学和力产生动力学随晶格间距而变化。此外,我们描述了一个更简单的两弹簧跨桥(2sXB)模型,该模型产生的结果与4sXB模型相似。与4sXB模型不同,2sXB模型不需要迭代技术,从而使计算效率更高。随着晶格间距的增加,两个多弹簧跨桥结合并产生力的速率降低。每个横桥在经历动力冲程时产生的轴向力会随着晶格间距的增加而增加。随着晶格间距的增加,跨桥在经历动力冲程时产生的径向力从膨胀到压缩变化。重要的是,这些结果反映出完整,收缩的肌肉力量产生的结果。

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