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肌球蛋白 II 双 heads 结合 F-actin 显示应变对头结构的影响。

Double-headed binding of myosin II to F-actin shows the effect of strain on head structure.

机构信息

Inst. of Molecular Biophysics, Florida State University, Tallahassee, FL 32306, United States.

Dept of Molecular Physiology & Biophysics, University of Vermont College of Medicine, Burlington, VT 05405, United States.

出版信息

J Struct Biol. 2023 Sep;215(3):107995. doi: 10.1016/j.jsb.2023.107995. Epub 2023 Jul 4.

Abstract

Force production in muscle is achieved through the interaction of myosin and actin. Strong binding states in active muscle are associated with Mg·ADP bound to the active site; release of Mg·ADP allows rebinding of ATP and dissociation from actin. Thus, Mg·ADP binding is positioned for adaptation as a force sensor. Mechanical loads on the lever arm can affect the ability of myosin to release Mg·ADP but exactly how this is done is poorly defined. Here we use F-actin decorated with double-headed smooth muscle myosin fragments in the presence of Mg·ADP to visualize the effect of internally supplied tension on the paired lever arms using cryoEM. The interaction of the paired heads with two adjacent actin subunits is predicted to place one lever arm under positive and the other under negative strain. The converter domain is believed to be the most flexible domain within myosin head. Our results, instead, point to the segment of heavy chain between the essential and regulatory light chains as the location of the largest structural change. Moreover, our results suggest no large changes in the myosin coiled coil tail as the locus of strain relief when both heads bind F-actin. The method would be adaptable to double-headed members of the myosin family. We anticipate that the study of actin-myosin interaction using double-headed fragments enables visualization of domains that are typically noisy in decoration with single-headed fragments.

摘要

肌肉中的力产生是通过肌球蛋白和肌动蛋白的相互作用实现的。在活跃的肌肉中,强结合状态与结合在活性位点的 Mg·ADP 有关;Mg·ADP 的释放允许 ATP 的重新结合和与肌动蛋白的解离。因此,Mg·ADP 的结合被定位为适应力传感器。杠杆臂上的机械负荷会影响肌球蛋白释放 Mg·ADP 的能力,但具体是如何做到这一点的还不清楚。在这里,我们使用带有 Mg·ADP 的双头平滑肌肌球蛋白片段修饰的 F-肌动蛋白,使用 cryoEM 可视化内部供应张力对配对杠杆臂的影响。配对头部与两个相邻肌动蛋白亚基的相互作用预计会使一个杠杆臂处于正应变,另一个处于负应变。转换器结构域被认为是肌球蛋白头部中最灵活的结构域。然而,我们的结果表明,在两个头部结合 F-肌动蛋白时,作为应变缓解的位置,最大的结构变化发生在重链上连接必需轻链和调节轻链的区域。此外,我们的结果表明,当两个头部结合 F-肌动蛋白时,肌球蛋白卷曲螺旋尾部没有发生大的变化,作为应变缓解的位置。该方法适用于肌球蛋白家族的双头成员。我们预计,使用双头片段研究肌球蛋白-肌动蛋白相互作用可以可视化通常在单头片段装饰中存在噪声的结构域。

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本文引用的文献

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