Florida State University, Institute of Molecular Biophysics, Tallahassee, FL 32306-4380, USA.
Duke University Medical Center, Department of Cell Biology, Durham, NC 27607, USA.
Int J Mol Sci. 2019 Apr 5;20(7):1703. doi: 10.3390/ijms20071703.
Much has been learned about the interaction between myosin and actin through biochemistry, in vitro motility assays and cryo-electron microscopy (cryoEM) of F-actin, decorated with myosin heads. Comparatively less is known about actin-myosin interactions within the filament lattice of muscle, where myosin heads function as independent force generators and thus most measurements report an average signal from multiple biochemical and mechanical states. All of the 3D imaging by electron microscopy (EM) that has revealed the interplay of the regular array of actin subunits and myosin heads within the filament lattice has been accomplished using the flight muscle of the large water bug sp. The flight muscle possesses a particularly favorable filament arrangement that enables all the myosin cross-bridges contacting the actin filament to be visualized in a thin section. This review covers the history of this effort and the progress toward visualizing the complex set of conformational changes that myosin heads make when binding to actin in several static states, as well as the fast frozen actively contracting muscle. The efforts have revealed a consistent pattern of changes to the myosin head structures as determined by X-ray crystallography needed to explain the structure of the different actomyosin interactions observed in situ.
通过生物化学、体外运动分析和肌动蛋白丝上肌球蛋白头部的冷冻电子显微镜(cryoEM)研究,我们对肌球蛋白和肌动蛋白之间的相互作用有了很多了解。相比之下,我们对肌肉丝晶格内的肌动球蛋白相互作用了解较少,在肌肉丝晶格内,肌球蛋白头部作为独立的力发生器起作用,因此大多数测量结果报告了来自多种生化和力学状态的平均信号。所有通过电子显微镜(EM)进行的三维成像都揭示了肌动蛋白亚基和肌球蛋白头部在丝晶格内的规则排列之间的相互作用,这些成像都是使用大水黾的飞行肌肉完成的。飞行肌肉具有特别有利的丝排列,使得可以在薄片中观察到与肌动蛋白丝接触的所有肌球蛋白交联桥。这篇综述涵盖了这方面的努力以及取得的进展,包括可视化肌球蛋白头部在几个静态状态下与肌动蛋白结合时所发生的复杂构象变化,以及快速冷冻的活跃收缩肌肉。这些努力揭示了肌球蛋白头部结构的一致变化模式,这是通过 X 射线晶体学确定的,需要解释原位观察到的不同肌球蛋白肌动蛋白相互作用的结构。