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首页> 外文期刊>Journal of Muscle Research and Cell Motility >Structural dynamics of muscle protein phosphorylation.
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Structural dynamics of muscle protein phosphorylation.

机译:肌肉蛋白质磷酸化的结构动力学。

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We have used site-directed spectroscopic probes to detect structural changes, motions, and interactions due to phosphorylation of proteins involved in the regulation of muscle contraction and relaxation. Protein crystal structures provide static snapshots that provide clues to the conformations that are sampled dynamically by proteins in the cellular environment. Our site-directed spectroscopic experiments, combined with computational simulations, extend these studies into functional assemblies in solution, and reveal details of protein regions that are too dynamic or disordered for crystallographic approaches. Here, we discuss phosphorylation-mediated structural transitions in the smooth muscle myosin regulatory light chain, the striated muscle accessory protein myosin binding protein-C, and the cardiac membrane Ca(2+) pump modulator phospholamban. In each of these systems, phosphorylation near the N terminus of the regulatory protein relieves an inhibitory interaction between the phosphoprotein and its regulatory target. Several additional unifying themes emerge from our studies: (a) The effect of phosphorylation is not to change the affinity of the phosphoprotein for its regulated binding partner, but to change the structure of the bound complex without dissociation. (b) Phosphorylation induces transitions between order and dynamic disorder. (c) Structural states are only loosely coupled to phosphorylation; i.e., complete phosphorylation induces dramatic functional effects with only a partial shift in the equilibrium between ordered and disordered structural states. These studies, which offer atomic-resolution insight into the structural and functional dynamics of these phosphoproteins, were inspired in part by the ground-breaking work in this field by Michael and Kate Barany.
机译:我们已经使用了定点光谱探针来检测由于参与肌肉收缩和松弛调节的蛋白质的磷酸化引起的结构变化,运动和相互作用。蛋白质晶体结构可提供静态快照,从而为在细胞环境中蛋白质动态采样的构象提供线索。我们的定点光谱实验与计算模拟相结合,将这些研究扩展到了溶液中的功能组装中,并揭示了对于晶体学方法而言过于动态或无序的蛋白质区域的细节。在这里,我们讨论了平滑肌肌球蛋白调节轻链,横纹肌辅助蛋白肌球蛋白结合蛋白C和心肌膜Ca(2+)泵调节剂phospholamban的磷酸化介导的结构过渡。在这些系统的每个系统中,调节蛋白N末端附近的磷酸化可减轻磷蛋白与其调节靶标之间的抑制性相互作用。我们的研究还提出了其他几个统一的主题:(a)磷酸化的作用不是改变磷蛋白对其调节的结合伴侣的亲和力,而是改变结合复合物的结构而无需解离。 (b)磷酸化引起有序和动态障碍之间的过渡。 (c)结构状态仅与磷酸化松散耦合;即,完全的磷酸化诱导了戏剧性的功能效应,而有序和无序结构态之间的平衡仅发生了部分移动。这些研究为这些磷蛋白的结构和功能动力学提供了原子分辨率的洞察力,部分是受到迈克尔和凯特·巴兰尼在这一领域的开创性工作的启发。

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