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首页> 外文期刊>Biophysical Journal >Structure and dynamics of the force-generating domain of myosin probed by multifrequency electron paramagnetic resonance.
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Structure and dynamics of the force-generating domain of myosin probed by multifrequency electron paramagnetic resonance.

机译:多频电子顺磁共振探测的肌球蛋白力产生域的结构和动力学。

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摘要

Spin-labeling and multifrequency EPR spectroscopy were used to probe the dynamic local structure of skeletal myosin in the region of force generation. Subfragment 1 (S1) of rabbit skeletal myosin was labeled with an iodoacetamide spin label at C707 (SH1). X- and W-band EPR spectra were recorded for the apo state and in the presence of ADP and nucleotide analogs. EPR spectra were analyzed in terms of spin-label rotational motion within myosin by fitting them with simulated spectra. Two models were considered: rapid-limit oscillation (spectrum-dependent on the orientational distribution only) and slow restricted motion (spectrum-dependent on the rotational correlation time and the orientational distribution). The global analysis of spectra obtained at two microwave frequencies (9.4 GHz and 94 GHz) produced clear support for the second model and enabled detailed determination of rates and amplitudes of rotational motion and resolution of multiple conformational states. The apo biochemical state is well-described by a single structural state of myosin (M) with very restricted slow motion of the spin label. The ADP-bound biochemical state of myosin also reveals a single structural state (M*, shown previously to be the same as the post-powerstroke ATP-bound state), with less restricted slow motion of the spin label. In contrast, the extra resolution available at 94 GHz reveals that the EPR spectrum of the S1.ADP.V(i)-bound biochemical state of myosin, which presumably mimics the S1.ADP.P(i) state, is resolved clearly into three spectral components (structural states). One state is indistinguishable from that of the ADP-bound state (M*) and is characterized by moderate restriction and slow motion, with a mole fraction of 16%. The remaining 84% (M**) contains two additional components and is characterized by fast rotation about the x axis of the spin label. After analyzing EPR spectra, myosin ATPase activity, and available structural information for myosin II, we conclude that post-powerstroke and pre-powerstroke structural states (M* and M**) coexist in the S1.ADP.V(i) biochemical state. We propose that the pre-powerstroke state M** is characterized by two structural states that could reflect flexibility between the converter and N-terminal domains of myosin.
机译:自旋标记和多频EPR光谱用于探测力生成区域中骨骼肌肌球蛋白的动态局部结构。兔骨骼肌肌球蛋白的亚片段1(S1)在C707(SH1)处标记了碘乙酰胺旋转标记。在ADP和核苷酸类似物的存在下,记录了载脂蛋白状态的X和W波段EPR光谱。通过将EPR光谱与模拟光谱拟合,根据肌球蛋白内自旋标记旋转运动对其进行了分析。考虑了两种模型:快速极限振荡(仅取决于频谱的定向分布)和慢速受限运动(取决于旋转相关时间和定向的分布频谱)。在两个微波频率(9.4 GHz和94 GHz)下获得的光谱的全局分析为第二个模型提供了明确的支持,并能够详细确定旋转运动的速率和幅度以及多种构象状态的分辨率。载脂蛋白的生化状态可以很好地描述为肌球蛋白(M)的单一结构状态,且旋转标记的慢动作受限制。 ADP结合的肌球蛋白的生化状态还揭示了一个单一的结构状态(M *,以前显示为与中风后ATP结合的状态相同),旋转标记的慢动作受较少限制。相比之下,在94 GHz频率下可获得的额外分辨率表明,与肌球蛋白S1.ADP.V(i)结合的生化状态的EPR光谱可以清晰地解析为S1.ADP.P(i)状态。三个光谱成分(结构态)。一种状态与ADP结合状态(M *)的状态没有区别,并且具有中等限制和慢动作的特征,摩尔分数为16%。剩余的84%(M **)包含两个附加成分,其特征是围绕旋转标签的x轴快速旋转。在分析了EPR光谱,肌球蛋白ATP酶活性以及肌球蛋白II的可用结构信息后,我们得出结论:中风后和中风前的结构状态(M *和M **)共存于S1.ADP.V(i)生化状态。我们提出,中风前状态M **的特征是两个结构状态,可以反映转换器和肌球蛋白N端域之间的灵活性。

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