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Structure-Function Relation of the Myosin Motor in Striated Muscle

机译:肌球蛋白电动机在条纹肌肉中的结构功能关系

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Force and shortening in striated muscle are driven by a structural working stroke in the globular portion of the myosin molecules-the myosin head-that cross-links the myosin-containing filaments and the actin-containing filaments. We use time-resolved X-ray diffraction in single fibers from frog skeletal muscle to link the conformational changes in the myosin head determined at atomic resolution in crystallographic studies with the kinetic and mechanical features of the molecular motor in the preserved sarcomeric structure. Our approach exploits the improved brightness and collimation of the X-ray beams of the third generation synchrotrons by using X-ray interference between the two arrays of myosin heads in each bipolar myosin filament to measure with ? sensitivity the axial motions of myosin heads in situ during the synchronous execution of the working stroke elicited by rapid decreases in length or load imposed during an active isometric contraction. Changes in the intensity and interference-fine structure of the axial X-ray reflections following the mechanical perturbation allowed to establish the average conformation of the myosin heads during the active isometric contraction and the extent of tilt during the elastic response and during the subsequent working stroke. The myosin working stroke is 12 nm at low loads, which is consistent with crystallographic studies, while it is smaller and slower at higher loads. The load dependence of the size and speed of the myosin working stroke is the molecular determinant of the macroscopic performance and efficiency of muscle.
机译:纹状体肌肉的力和缩短是由肌球蛋白分子的球状部分的结构工作中风驱动 - 肌球蛋白头 - 交联含肌苷细丝和含肌动蛋白的长丝。我们在从青蛙骨骼肌中使用的单纤维中的时间分辨X射线衍射,将在晶体运动中的晶体研究中确定的原子分辨率中确定的肌球蛋白头的构象变化与保留的SARCOM结构中的分子电机的动力学和机械特征。我们的方法利用每个双极肌肌细丝中的两个肌蛋白头部的肌肌瘤之间的X射线干扰来利用第三代同步调节的X射线束的改善亮度和准直,以便测量?敏感性在运动冲程的同步执行期间肌球蛋白头的轴向运动引发在有源等距收缩期间施加的长度或负荷的快速减小。机械扰动后轴向X射线反射的强度和干扰 - 细结构的变化允许在有源等距收缩期间建立肌球蛋白头的平均构象,以及在弹性响应期间的倾斜程度和随后的工作冲程期间。肌球蛋白工作中风在低负荷下是12nm,这与晶体研究一致,而在较高载荷下较小且较慢。肌球蛋白工作中风的尺寸和速度的负荷依赖性是宏观性能和肌肉效率的分子决定因素。

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