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Conformationally Trapping the Actin-binding Cleft of Myosin with a Bifunctional Spin Label

机译:用双官能旋转标签构造地捕获肌动蛋白结合的肌菌素

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We have trapped the catalytic domain of Dictyostelium (Dicty) myosin II in a weak actin-binding conformation by chemically crosslinking two engineered cysteines across the actin-binding cleft, using a bifunctional spin label (BSL). By connecting the lower and upper 50 kDa domains of myosin, the crosslink restricts the conformation of the actin-binding cleft. Crosslinking has no effect on the basal ATPase activity of isolated myosin, but it impairs rigor actin binding and actin-activation of myosin ATPase. EPR spectra of BSL provide insight into actomyosin structural dynamics. BSL is highly immobilized within the actin-binding cleft and is thus exquisitely sensitive to the global orientation and rotational motions of the myosin head. Conventional EPR shows that myosin heads bound to oriented actin filaments are highly disordered with respect to the actin filament axis, in contrast to the nearly crystalline order of myosin heads in rigor. This disorder is similar to that of weakly bound heads induced by ATP, but saturation transfer EPR shows that the disorder of crosslinked myosin is at least 100 times slower. Thus this cleft-crosslinked myosin is remarkably similar, in both actin affinity and rotational dynamics, to SH1-SH2 crosslinked BSL-myosin S1. We conclude that, whether myosin is trapped at the actin-myosin interface or in the force-generating region between the active site and lever arm, the structural state of myosin is intermediate between the weak-binding state preceding phosphate release and the strong-binding state that succeeds it. We propose that it represents the threshold of force generation.
机译:使用双官能旋旋标记(BSL)在肌动蛋白结合裂缝中化学交联两种工程裂缝,我们捕获了Dictyostelium(dicty)肌蛋白II的催化结构域的催化结构域。通过连接肌球蛋白的下部和上部50kDa结构域,交联将肌动蛋白结合裂缝的构象限制。交联对分离的肌球蛋白的基础ATP酶活性没有影响,但它损害了肌蛋白ATP酶的严格肌动蛋白结合和肌动蛋白激活。 BSL的EPR光谱提供洞察肌瘤结构动态的洞察力。 BSL在肌动蛋白结合裂隙内高度固定,因此对肌球蛋白头的全球定向和旋转运动进行了精致敏感。传统的EPR表明,与取向肌动蛋白长丝的肌球蛋白头相对于肌动蛋白长丝轴线高度无序,与Rigor中肌肌肌肌的几乎结晶顺序相反。这种疾病类似于ATP诱导的弱束缚头,但饱和转移EPR表明交联肌蛋白的病症至少100倍较慢。因此,在肌动蛋白亲和力和旋转动力学中,这种裂隙交联的肌蛋白在肌动蛋白亲和力和旋转动力学中具有显着相似至SH1-SH2交联的BSL-myosin S1。我们得出结论,肌蛋白是否被捕获在肌动蛋白 - 肌球蛋白界面或活性部位和杠杆臂之间的力产生区域中,肌球蛋白的结构状态是磷酸盐释放前的弱结合状态和强绑定之间的中间体成功的状态。我们建议它代表了力量的阈值。

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