Brenner B, Xu S, Chalovich J M, Yu L C
Medical School Hannover, Germany.
Biophys J. 1996 Nov;71(5):2751-8. doi: 10.1016/S0006-3495(96)79468-7.
Radial equilibrium lengths of the weakly attached, force-generating, and rigor cross-bridges are determined by recording their resistance to osmotic compression. Radial equilibrium length is the surface-to-surface distance between myosin and actin filaments at which attached cross-bridges are, on average, radially undistorted. We previously proposed that differences in the radial equilibrium length represent differences in the structure of the actomyosin cross-bridge. Until now the radial equilibrium length had only been determined for various strongly attached cross-bridge states and was found to be distinct for each state examined. In the present work, we demonstrate that weakly attached cross-bridges, in spite of their low affinity for actin, also exert elastic forces opposing osmotic compression, and they are characterized by a distinct radial equilibrium length (12.0 nm vs. 10.5 nm for force-generating and 13.0 nm for rigor cross-bridge). This suggests significant differences in the molecular structure of the attached cross-bridges under these conditions, e.g., differences in the shape of the myosin head or in the docking of the myosin to actin. Thus, the present finding supports our earlier conclusion that there is a structural change in the attached cross-bridge associated with the transition from a weakly bound configuration to the force-generating configuration. The implications for imposing spatial constraints on modeling actomyosin interaction in the filament lattice are discussed.
通过记录弱附着、产生力和强直横桥对渗透压压缩的阻力,来确定它们的径向平衡长度。径向平衡长度是肌球蛋白和肌动蛋白丝之间的表面到表面距离,在此距离下,附着的横桥平均在径向没有变形。我们之前提出,径向平衡长度的差异代表了肌动球蛋白横桥结构的差异。到目前为止,径向平衡长度仅针对各种强附着横桥状态进行了测定,并且发现对于所研究的每种状态都是不同的。在本研究中,我们证明,尽管弱附着横桥对肌动蛋白的亲和力较低,但它们也会施加抵抗渗透压压缩的弹力,并且它们具有独特的径向平衡长度(产生力的横桥为12.0纳米,强直横桥为13.0纳米,与之相比,产生力的横桥为10.5纳米)。这表明在这些条件下,附着横桥的分子结构存在显著差异,例如,肌球蛋白头部形状的差异或肌球蛋白与肌动蛋白对接的差异。因此,本研究结果支持了我们早期的结论,即附着横桥从弱结合构型转变为产生力的构型时会发生结构变化。本文还讨论了对在细丝晶格中模拟肌动球蛋白相互作用施加空间约束的意义。