PhysioLab, Università di Firenze, 50019 Sesto Fiorentino, Italy.
Dipartimento di Biologia, Università di Firenze, 50019 Sesto Fiorentino, Italy.
Int J Mol Sci. 2022 Feb 25;23(5):2566. doi: 10.3390/ijms23052566.
To define the mechanics and energetics of the myosin motor action in muscles, it is mandatory to know fundamental parameters such as the stiffness and the force of the single myosin motor, and the fraction of motors attached during contraction. These parameters can be defined in situ using sarcomere-level mechanics in single muscle fibers under the assumption that the stiffness of a myosin dimer with both motors attached (as occurs in rigor, when all motors are attached) is twice that of a single motor (as occurs in the isometric contraction). We use a mechanical/structural model to identify the constraints that underpin the stiffness of the myosin dimer with both motors attached to actin. By comparing the results of the model with the data in the literature, we conclude that the two-fold axial stiffness of the dimers with both motors attached is justified by a stiffness of the myosin motor that is anisotropic and higher along the axis of the myofilaments. A lower azimuthal stiffness of the motor plays an important role in the complex architecture of the sarcomere by allowing the motors to attach to actin filaments at different azimuthal angles relative to the thick filament.
为了定义肌肉中肌球蛋白马达的力学和能量学特性,必须要知道一些基本参数,例如单个肌球蛋白马达的刚度和力,以及收缩过程中附着的马达的比例。这些参数可以通过假设附着两个马达的肌球蛋白二聚体的刚度(就像在所有马达都附着的僵硬状态下那样)是单个马达的两倍(就像在等长收缩中那样),来使用肌节水平的力学在单个肌纤维中进行原位定义。我们使用机械/结构模型来确定附着在肌动蛋白上的两个马达的肌球蛋白二聚体的刚度的基础约束条件。通过将模型的结果与文献中的数据进行比较,我们得出结论,附着两个马达的二聚体的两倍轴向刚度是由沿肌丝轴的各向异性和更高的肌球蛋白马达刚度来证明的。马达的较低的方位刚度在肌节的复杂结构中起着重要作用,因为它允许马达相对于粗丝以不同的方位角附着在肌动蛋白丝上。